The Ksp can be used to find the minimum concentration of hydroxide ions required to start the precipitation of Al(OH)3 given a concentration of aluminum ions, and thus determine the pH above which this precipitation occurs. Calculate this pH value if 6.70 lb of aluminum sulfate, Al2(SO4)3 , is added to 1450 gallons of water (with a negligible change in volume).

Answers

Answer 1

The pH value above which the precipitation of Al(OH)3 occurs is approximately 3.48.


To calculate the pH value above which the precipitation of Al(OH)3 occurs, we need to use the Ksp expression for Al(OH)3 which is:

Ksp = [Al3+][OH-]^3

We know that Al2(SO4)3 dissociates in water to form 2 Al3+ ions and 3 SO42- ions. So the concentration of Al3+ ions can be calculated as follows:

[Al3+] = 6.70 lb Al2(SO4)3 / (342.15 g/mol Al2(SO4)3) / (1450 gallons) * (3.785 L/gallon) = 0.00336 M

Now, using the Ksp expression, we can calculate the minimum concentration of hydroxide ions required for the precipitation of Al(OH)3:

Ksp = [Al3+][OH-]^3

4.9 x 10^-33 = (0.00336 M)([OH-]^3)

[OH-] = 3.04 x 10^-11 M

To find the pH value, we can use the fact that:

pH + pOH = 14

pOH = -log[OH-] = -log(3.04 x 10^-11) = 10.52

pH = 14 - pOH = 3.48

Therefore, the pH value above which the precipitation of Al(OH)3 occurs is approximately 3.48.

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Related Questions

In which of these substances are the atoms held together by metallic bonding?A. CrB. SiC. S8D. CO2E. Br2

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Electrostatic attraction between metal cations and delocalized electrons produces metallic bonds. Many of the physical characteristics of metals, including conductivity and malleability, are explained by the type of metallic bonding that exists.

The substance in which the atoms are held together by metallic bonding is A. Cr (Chromium). Metallic bonding occurs between metal atoms, where the valence electrons are shared by all the atoms in a lattice structure, creating a strong bond. Cr is a transition metal and its atoms have a partially filled d orbital, which allows them to share their valence electrons and form metallic bonds.

B. Si (Silicon) is a non-metal and forms covalent bonds, where atoms share electrons with each other to form a stable molecule.

C. S8 (Sulfur) is a molecular substance where eight sulfur atoms are covalently bonded together in a ring structure, with weak van der Waals forces holding the molecules together.

D. CO2 (Carbon dioxide) is a molecular substance where one carbon atom is covalently bonded to two oxygen atoms, with the bonds formed by sharing electrons between atoms.

E. Br2 (Bromine) is a molecular substance where two bromine atoms are covalently bonded together, with the bonds formed by sharing electrons between atoms. Br2150 is not a known substance.

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A solution contains equal moles of liquid components X and Z. The vapor pressure of pure X is 140 mm Hg, and that of pure Z is 190 mm Hg. The experimentally measured vapor pressure of the solution is 170 mm Hg. What are the relative strengths of the particle interactions in this solution

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The relative strengths of the particle interactions in this solution are weaker than those in the pure components.

The relative strengths of particle interactions in a solution can be determined by comparing the observed vapor pressure of the solution to the vapor pressures of the pure components.

Raoult's law states that the vapor pressure of a solution is equal to the vapor pressure of the pure solvent multiplied by its mole fraction in the solution. Mathematically, this can be expressed as:

P = P°X * X + P°Z * Z

X, P°Z is the vapor pressure of pure component Z, X and Z are the mole fractions of the respective components in the solution.

In this case, we are given that the mole fractions of X and Z in the solution are equal, i.e., X = Z = 0.5. We are also given the vapor pressures of pure X and pure Z, which are 140 mm Hg and 190 mm Hg, respectively. The experimentally measured vapor pressure of the solution is 170 mm Hg.

Raoult's law, we get:

170 mm Hg = (140 mm Hg * 0.5) + (190 mm Hg * 0.5)

170 mm Hg = 115 mm Hg + 95 mm Hg

170 mm Hg = 210 mm Hg

The calculated vapor pressure is higher than the experimentally measured value, which indicates that the interactions between the particles in the solution are weaker than the interactions between the particles in the pure components.

Since the vapor pressure is a measure of the escaping tendency of the particles in the liquid, weaker interactions mean that the particles are less tightly held in the liquid phase and more readily escape into the gas phase. This could be due to weaker intermolecular forces or a difference in the size or shape of the particles in the solution compared to those in the pure components.

Therefore, the relative strengths of the particle interactions in this solution are weaker than those in the pure components.

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What is the final volume in milliliters when 0.546 L of a 34.7 % (m/v) solution is diluted to 21.5 % (m/v)

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The final volume in milliliters when 0.546 L of a 34.7 % (m/v) solution is diluted to 21.5 % (m/v) is 883 milliliters.

To solve this problem, we can use the formula:

C1V1 = C2V2

where C1 and V1 are the initial concentration and volume, and C2 and V2 are the final concentration and volume.

Given:

C1 = 34.7 % (m/v)

V1 = 0.546 L

C2 = 21.5 % (m/v)

Let's first convert the initial and final concentrations to their respective mass per volume units (g/mL).

For C1:

34.7 % (m/v) = 34.7 g/100 mL = 0.347 g/mL

For C2:

21.5 % (m/v) = 21.5 g/100 mL = 0.215 g/mL

Now, we can plug in the values into the formula:

0.347 g/mL x 0.546 L = 0.215 g/mL x V2

Solving for V2, we get:

V2 = (0.347 g/mL x 0.546 L) / 0.215 g/mL

V2 = 0.883 L

Finally, we convert the volume to milliliters:

V2 = 0.883 L x 1000 mL/L

V2 = 883 mL

Therefore, the final volume is 883 milliliters.

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A certain protein was found to contain 0.560% zinc by mass. Determine the minimum molecular mass of the protein.

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The minimum molecular mass of the protein is: 17857.14 g/mol

To determine the minimum molecular mass of the protein, we need to use the mass percent composition of zinc to calculate the mass of zinc in one mole of the protein.

Let's assume that we have 100 grams of the protein. Then, the mass of zinc in 100 g of the protein would be:

0.560 g Zn per 100 g protein

To convert this to moles of Zn per mole of protein, we need to divide by the molar mass of Zn:

0.560 g Zn / 65.38 g/mol Zn = 0.00856 mol Zn

Since the protein contains 0.560% zinc by mass, the mass of one mole of the protein must be:

100 g protein / 0.560 g Zn per 100 g protein = 17857.14 g protein per mole of Zn

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Which gas has the same density at 316 °C and 1.50 atm that O2 gas has at 0°C and 1.00 atm? a. SO2 b. N2 c. NO2 d. CO2 e. CI2

Answers

The correct answer to the given question is option b. N2

The answer can be found by using the ideal gas law, which states:

PV = nRT

Where:

P = pressure

V = volume

n = number of moles

R = gas constant

T = temperature

Assuming that the volume and the number of moles are constant, the equation can be simplified to:

(P/T)1 = (P/T)2

Where subscripts 1 and 2 represent the initial and final conditions, respectively.

We can use this equation to find the temperature at which the density of the given gas is the same as that of O2 gas at 0°C and 1.00 atm. The molar mass of O2 is 32.00 g/mol.

Let's first convert the initial and final temperatures to Kelvin:

316 °C = 589 K

0°C = 273 K

Now, let's solve for the pressure of the given gas:

(P/T)1 = (P/T)2

(P/589) = (1.50/273) (using the values given in the question)

P = (1.50/273) * 589

P = 3.23 atm

Next, we can use the density equation:

density = (molar mass * pressure) / (gas constant * temperature)

For O2 at 0°C and 1.00 atm, the density is:

density = (32.00 g/mol * 1.00 atm) / (0.08206 Latm/molK * 273 K)

density = 1.43 g/L

Now we can solve for the temperature at which the density of the given gas is also 1.43 g/L:

1.43 = (molar mass * 3.23) / (0.08206 * T)

T = (molar mass * 3.23) / (0.08206 * 1.43)

T = 258 K = -15°C

Therefore, the gas that has the same density at 316°C and 1.50 atm that O2 gas has at 0°C and 1.00 atm is nitrogen gas (N2).

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A process increases the entropy of the system by 119 J/mol K and absorbs 38 kJ/mol of heat from the surroundings. Does this process favor products at high temperature or low temperature

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This process favor products at high temperature because  ∆G is positive (∆G > 0), it indicates that the reaction is non-spontaneous and favors the formation of products at high temperature.

In the context of a non-spontaneous reaction, the process would favor products at a high temperature. Non-spontaneous reactions require an input of energy to proceed, and increasing the temperature can provide the necessary energy to drive the reaction in the forward direction.

By supplying heat and raising the temperature, the system can overcome the energy barrier and favor the formation of products.

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How many grams of radium may be formed by the passage of 1.71 amps for 2.21 hours through an electrolytic cell that contains a molten radium salt.

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The mass of radium formed by the passage of 1.71 A current for 2.21 hours through an electrolytic cell containing molten radium salt is 5.45 g.

The amount of substance (in moles) formed during electrolysis can be calculated using Faraday's law, which states that the amount of substance (in moles) formed is directly proportional to the charge passed through the electrolyte. The equation for Faraday's law is:

n = (Q) / (zF)

Where:

n = amount of substance formed (in moles)

Q = charge passed through the electrolyte (in coulombs)

z = charge number or valency of the ion being reduced or oxidized

F = Faraday's constant (96,485 C/mol)

Given:

Current (I) = 1.71 A

Time (t) = 2.21 hours = 2.21 x 3600 seconds (converted to seconds)

Charge (Q) = I x t (current multiplied by time)

Charge number of radium ion (z) = 2 (since radium has a charge of +2)

Faraday's constant (F) = 96,485 C/mol

Molar mass of radium (Ra) = 226 g/mol

Plugging in the values and solving for n:

Q = 1.71 A x 2.21 x 3600 s = 13,268 C

n = (13,268 C) / (2 x 96,485 C/mol) = 0.0687 mol

The mass of radium formed can be calculated using the molar mass of radium:

Mass = n x molar mass of radium = 0.0687 mol x 226 g/mol = 5.45 g

So, the mass of radium formed by the passage of 1.71 A current for 2.21 hours through the electrolytic cell containing molten radium salt is 5.45 g.

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Oxygen and copper are produced during the electrolysis of a CuO solution. Which reaction occurs at the positive electrode

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The reaction that occurs at the positive electrode during the electrolysis of a CuO solution is:

2O²⁻→ O₂ + 4e⁻

During the electrolysis of a CuO solution, oxygen gas is produced at the positive electrode (also known as the anode). This is because the positive electrode attracts negatively charged ions, which are oxide ions (O²⁻), and causes them to lose electrons and form oxygen gas. The copper ions (Cu²⁺) from the CuO solution will be attracted to the negative electrode (also known as the cathode) and gain electrons, which will cause them to form solid copper metal.

So overall, the reaction at the positive electrode is 2O²⁻→ O₂ + 4e⁻.

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Why does 100 mL of a 0.1 M solution of NaCl require a different amount of solid than 100 mL of a 0.1 M solution of CuSO4

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Even though both solutions have the same molarity, they "have different molecular weights, which means that the number of moles of each compound required to make a 0.1 M solution will be different".

The molecular weight of NaCl is 58.44 g/mol, while the molecular weight of CuSO4 is 159.61 g/mol.

To prepare a 0.1 M solution of NaCl, you would need to dissolve 0.1 moles of NaCl in enough water to make a final volume of 100 mL. This corresponds to 5.844 g of NaCl.

On the other hand, to prepare a 0.1 M solution of CuSO4, you would need to dissolve 0.1 moles of CuSO4 in enough water to make a final volume of 100 mL. This corresponds to 15.961 g of CuSO4.

Therefore, even though the molarity of the solutions is the same, the amount of solid required to make each solution is different due to the different molecular weights of NaCl and CuSO4.

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what is the ph of a 0.300 m solution of aniline (c₆h₅nh₂, kb = 4.3 × 10⁻¹⁰)?

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The pH of a 0.300 M solution of aniline is 9.39.

The pH of a 0.300 M solution of aniline can be calculated using the relationship between the dissociation constant (Kb) and the ionization constant (Ka) of the acid-conjugate base pair. Since aniline is a weak base, it will react with water to produce the anilinium ion ([tex]C_6H_5NH_3^+[/tex]) and hydroxide ion (OH-).
The Kb value for aniline can be used to calculate the Ka value, which is [tex]1.9 * 10^{-5}[/tex]. From this, the pKa can be calculated as 4.72. Using the equation pH = pKa + log([A-]/[HA]), where [A-] is the concentration of the conjugate base ([tex]C_6H_5NH_2^-[/tex]) and [HA] is the concentration of the acid ([tex]C_6H_5NH_3^+[/tex]), the pH of the solution can be calculated to be approximately 9.39.

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How many moles of carbon dioxide are produced when 18.6 g of HF are reacted with an excess amount of sodium carbonate

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0.4645 moles of carbon dioxide are produced when 18.6 g of HF are reacted with an excess amount of sodium carbonate.

To answer this question, we first need to write out the balanced chemical equation for the reaction between HF and sodium carbonate:
2HF + Na₂CO₃ -> 2NaF + CO₂ + H₂O
From this equation, we can see that for every 2 moles of HF that react, 1 mole of CO₂ is produced.
To determine the number of moles of HF in 18.6 g, we need to use the molar mass of HF, which is 20.01 g/mol:
moles of HF = mass / molar mass = 18.6 g / 20.01 g/mol = 0.929 moles
Since there is an excess amount of sodium carbonate, all of the HF will be consumed in the pressure reaction, so we can use the ratio of 2 moles HF to 1 mole CO₂ to calculate the number of moles of carbon dioxide produced:
moles of CO₂ = 0.929 moles HF x (1 mole CO₂ / 2 moles HF) = 0.4645 moles

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n testing an unknown for the ammonium ion, a student heats the beaker directly with a flame, inadvertently causing the solution to boil and spatter. How could this lead to an error in the determination

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The student's error of heating the beaker directly with a flame causing the solution to boil and spatter could lead to an error in the determination of the ammonium ion in the unknown.

When the ammonium ion, NH₄⁺, is heated, it undergoes thermal decomposition to form ammonia gas, NH₃, and water vapor. This reaction is exothermic, meaning it releases heat.

Therefore, when the student heated the beaker directly with a flame, it led to the decomposition of the ammonium ion, causing the formation of ammonia gas and water vapor. The spattering of the solution could result in a loss of ammonium ions or an incomplete reaction of the ammonium ions.

As a result, the amount of ammonium ions detected would be less than the actual amount present in the solution. This would lead to an error in the determination of the concentration of the ammonium ion in the unknown. It is essential to follow proper testing procedures to avoid errors and obtain accurate results.

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A solution containing 15.0mL of 4.00MHNO3 is diluted to a volume of 1.00L. What is the pH of the solution

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The pH of the diluted nitric acid solution is 1.22.

To calculate the pH of the solution, we need to first calculate the concentration of the diluted solution:

We know that the initial solution has a volume of 15.0 mL and a concentration of 4.00 M. We can use the dilution formula to find the final concentration:

M1V1 = M2V2

where M1 is the initial concentration, V1 is the initial volume, M2 is the final concentration, and V2 is the final volume.

Substituting the values given:

(4.00 M) x (15.0 mL) = M2 x (1000 mL)

M2 = (4.00 M x 15.0 mL) / 1000 mL

M2 = 0.060 M

So the final concentration of the diluted solution is 0.060 M.

To find the pH of this solution, we can use the equation:

[tex]pH = -log[H^+][/tex]

where [[tex]H^+[/tex]] is the hydrogen ion concentration.

We can use the fact that nitric acid ([tex]HNO_3[/tex]) is a strong acid and completely dissociates in water to form [tex]H^+[/tex] ions and [tex]NO_3^-[/tex] ions. Therefore, the hydrogen ion concentration is equal to the concentration of the nitric acid:

[[tex]H^+[/tex]] = 0.060 M

Substituting this into the pH equation, we get:

pH = -log(0.060)

pH = 1.22

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. A flask containing 155 cm3 of hydrogen was collected under a pressure of 22.5 kPa. What pressure would have been required for the volume of the gas to have been 90.0 cm3, assuming the same temperature

Answers

A pressure of 38.8 kPa would have been required for the volume of hydrogen gas to have been 90.0 cm3, assuming the same temperature.

Boyle's Law states that the pressure of a gas is inversely proportional to its volume, when the temperature and the amount of gas are constant. This can be represented mathematically as:

P1V1 = P2V2

where P1 and V1 are the initial pressure and volume, and P2 and V2 are the final pressure and volume.

We can rearrange the equation to solve for P2:

P2 = (P1V1)/V2

Substituting the given values:

P2 = (22.5 kPa x 155 cm³) / 90.0 cm³ P2 = 38.8 kPa

Boyle's Law is a fundamental gas law that describes the relationship between the pressure and volume of a gas, assuming that the temperature and the number of gas particles are constant. It was first formulated by the Irish scientist Robert Boyle in the 17th century.

The law states that as the pressure of a gas increases, its volume decreases proportionally, and vice versa. This can be expressed mathematically as P₁V₁ = P₂V₂, where P₁ and V₁ are the initial pressure and volume of the gas, and P₂ and V₂ are the final pressure and volume. This law is often used in practical applications, such as in scuba diving, where changes in pressure and volume affect the amount of air needed for breathing. Boyle's Law is also important in understanding the behavior of gases in many industrial and scientific processes.

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A current of 4.82 A is passed through a Sn(NO3)2 solution. How long, in hours, would this current have to be applied to plate out 6.70 g of tin

Answers

Therefore, the current would have to be applied for 9.96 hours to plate out 6.70 g of tin.

The amount of tin deposited on the electrode is directly proportional to the quantity of electricity that passed through the circuit. The formula that relates the amount of substance deposited with the electric current and time is:

mass = (current x time x atomic mass) / (valence electrons x Faraday's constant)

We can rearrange this formula to solve for time:

time = (mass x valence electrons x Faraday's constant) / (current x atomic mass)

Substituting the given values, we have:

time = (6.70 g x 2 x 96485 C/mol) / (4.82 A x 118.71 g/mol) = 9.96 hours

So, the current would have to be applied for 9.96 hours to plate out 6.70 g of tin.

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in part 1 predict the product of the following three-step sequence, and then in parts 2 -4 classify each step as either a functional group transformation or a carbon–carbon bond-forming reaction.

Answers

Step 1 is a functional group transformation, while steps 2 and 3 are carbon-nitrogen bond forming and carbon-carbon bond forming reactions respectively.

In order to predict the product of the three-step sequence, we need to first identify the reactants and the reagents involved in each step. The three steps are:

Step 1: Benzene reacts with bromine in the presence of FeBr3 as a catalyst to form bromobenzene.
C6H6 + Br2 + FeBr3 → C6H5Br + HBr + FeBr2

Step 2: Bromobenzene reacts with sodium amide (NaNH2) in liquid ammonia (NH3) to form phenylsodium (C6H5Na).
C6H5Br + NaNH2 → C6H5Na + NaBr + H2

Step 3: Phenylsodium reacts with methyl iodide (CH3I) to form toluene.
C6H5Na + CH3I → C6H5CH3 + NaI

In step 1, we see a substitution reaction where a hydrogen on the benzene ring is replaced by a bromine atom, resulting in a functional group transformation. In step 2, we see a carbon-nitrogen bond forming reaction where the bromine atom is replaced by a sodium atom to form a phenylsodium intermediate. This is also a functional group transformation as we are replacing a halogen atom with a metal atom. In step 3, we see a carbon-carbon bond forming reaction where the phenylsodium intermediate reacts with methyl iodide to form toluene. This is a carbon-carbon bond forming reaction.

In summary, step 1 is a functional group transformation, while steps 2 and 3 are carbon-nitrogen bond forming and carbon-carbon bond forming reactions respectively.

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A sample of gas occupies a volume of 71.3 mL . As it expands, it does 123.7 J of work on its surroundings at a constant pressure of 783 Torr . What is the final volume of the gas

Answers

The final volume of the gas is 0.0000671 m3

To solve this problem, we can use the formula for work done by a gas at constant pressure:

W = -PΔV

where W is the work done, P is the pressure, and ΔV is the change in volume.

We can rearrange this formula to solve for ΔV:

ΔV = -W/P

Substituting the given values, we get:

ΔV = -(123.7 J) / (783 Torr)

Note that we need to convert Torr to SI units of pressure (Pascal) before using it in the formula:

1 Torr = 133.322 Pa

So, 783 Torr = 104373.2 Pa

Substituting this value, we get:

ΔV = -(123.7 J) / (104373.2 Pa)

Simplifying, we get:

ΔV = -0.001184 m³

Since the initial volume was 71.3 mL, we need to convert it to cubic meters before adding the change in volume:

71.3 mL = 0.0000713 m³

Adding the change in volume, we get:

Final volume = initial volume + ΔV
Final volume = 0.0000713 m³ - 0.001184 m³
Final volume = 0.0000671 m³

Therefore, the final volume of the gas is 0.0000671 m³

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Answer:

The final volume of the gas is 0.06025 L.

Explanation:

We can use the formula for work done by a gas at constant pressure:

W = -PΔV

where W is the work done by the gas, P is the pressure, and ΔV is the change in volume. Since the pressure is constant, we can rearrange the formula to solve for the change in volume:

ΔV = -W/P

Plugging in the given values, we get:

ΔV = -(123.7 J)/(783 Torr)

Note that we need to convert the pressure from Torr to SI units (Pascals) before we can use it in the formula. 1 Torr is equal to 133.32 Pa, so:

ΔV = -(123.7 J)/(783 Torr * 133.32 Pa/Torr) = -0.01105 m³

Finally, we can find the final volume of the gas by adding the change in volume to the initial volume:

Vf = Vi + ΔV = 71.3 mL + (-0.01105 m³) = 0.0713 L - 0.01105 L = 0.06025 L

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chlorine dioxide is used as a disinfectant in municipal water-treatment plants. It decomposes in a first-order reaction with a rate constant of 0.0714 s^-1 If the initial concentration were 0.12M what wold the concentation be after 14.0s has elapsed

Answers

The first-order rate law equation for the decomposition of chlorine dioxide is given as:

ln([ClO2]t/[ClO2]0) = -kt

where [ClO2]t is the concentration of chlorine dioxide at time t, [ClO2]0 is the initial concentration, k is the rate constant, and t is the elapsed time.

Rearranging this equation, we get:

[ClO2]t = [ClO2]0 x e^(-kt)

Substituting the given values, we get:

[ClO2]t = ₍0.12 M₎ x e^(-0.0714 s^-1 x 14.0 s) = 0.064 M

Therefore, the concentration of chlorine dioxide after 14.0 seconds would be 0.064 M.

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Chrysoberyl is ___. Group of answer choices A light green-yellow form of Beryl very common throughout the world only formed in beryllium-poor environments

Answers

Chrysoberyl is Faceted to produce "cyclic twins" which is the correct option E.

Chrysoberyl is a beryllium aluminate mineral or gemstone with the chemical formula BeAl₂O₄. Chrysoberyl and beryl are two very distinct gemstones, despite the fact that their names are similar and they both contain beryllium. On the Mohs scale of mineral hardness, chrysoberyl, which ranks between corundum and topaz at 8.5, is the third-hardest naturally occurring gemstone that is often found.

Pegmatitic mechanisms result in the formation of chrysoberyl. Relatively low-density molten lava is created during melting in the Earth's crust and has the ability to ascend higher and reach the surface. Because water could not be integrated into the crystallisation of solid minerals, it grew increasingly concentrated in the molten rock as the primary magma body cooled.

As a result, the remaining magma is more abundant in water and uncommon elements that also do not fit into the crystal structures of the main minerals that form rocks. By lowering the temperature range before the magma solidifies fully, water allows the concentration of rare elements to advance to the point where they can create their own unique minerals.

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Complete question:

Chrysoberyl is

A light green-yellow form of Beryl

very common throughout the world

only formed in beryllium-poor environments

the 3rd hardest natural gemstone

Faceted to produce "cyclic twins"

The observations above suggest that the extra liquid you added to your beaker could have been: a. Pure water b. More of the solution that was in your beaker to start c. A highly concentrated solution of salt and sugar

Answers

it seems that the extra liquid you added to your beaker could have been either a) pure water, b) more of the solution that was initially in your beaker, or c) a highly concentrated solution of salt and sugar.

To determine which option is correct, you can consider the changes observed in the beaker after adding the extra liquid. If the concentration of the solution remains unchanged, then option a) pure water is likely the correct answer, as it would dilute the solution evenly without affecting its composition.

If the concentration increases, then option c) a highly concentrated solution of salt and sugar might be correct, as it would increase the overall solute content in the beaker.

Finally, if the concentration remains the same but the volume increases, option b) more of the original solution could be the correct answer, as it would maintain the original composition while adding volume.

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a solution is made containing 4.6 g of sodium chloride per 250 g of water what is the percent by mass

Answers

The percent by mass of the solution containing 4.6 g of sodium chloride per 250 g of water is 1.81%. This means that 1.81% of the total mass of the solution is made up of sodium chloride.

To calculate the percent by mass of a solution containing 4.6 g of sodium chloride per 250 g of water, we need to divide the mass of the solute (sodium chloride) by the mass of the solution and multiply by 100%. Mathematically, this can be expressed as:

Percent by mass = (mass of solute / mass of solution) x 100%

The mass of the solution is the sum of the mass of the solute (4.6 g) and the mass of the solvent (water, 250 g), which is:

Mass of solution = Mass of solute + Mass of solvent

Mass of solution = 4.6 g + 250 g

Mass of solution = 254.6 g

Substituting the values, we get:

Percent by mass = (4.6 g / 254.6 g) x 100%

Percent by mass = 1.81%

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water with an alkalinity of 2.00 10-3 mol/l has a ph of 7.65. calculate [co2], [hco3-], [co32-], [h3o ] and [oh-].

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The concentrations of CO2, HCO3-, CO32-, H3O+, and OH- in the water are:

[CO2] = 4.37 × 10^(-12) mol/L

[HCO3-] = 1.00 × 10^(-3) mol/L

[CO32-] = 2.39 × 10^(-6) mol/L

[H3O+] = 1.96 × 10^(-8) mol/L

[OH-] = 2.24 × 10^(-7) mol/L

To solve this problem, we need to use the equations that describe the equilibria between CO2, HCO3-, CO32-, H3O+, and OH- in water. These equilibria are:

CO2 + H2O ⇌ HCO3- + H3O+

HCO3- ⇌ CO32- + H3O+

H2O ⇌ H+ + OH-

We also need to use the definition of alkalinity, which is the ability of water to neutralize acids. Alkalinity is equal to the concentration of HCO3- + 2 × CO32- in the water.

We can start by using the pH to find the concentration of H3O+ and OH-:

pH + pOH = 14

pOH = 14 - pH = 14 - 7.65 = 6.35

[H3O+] = 10^(-pH) = 10^(-7.65) = 1.96 × 10^(-8) mol/L

[OH-] = 10^(-pOH) = 10^(-6.35) = 2.24 × 10^(-7) mol/L

Next, we can use the definition of alkalinity and the concentrations of HCO3- and CO32- to find the concentration of each species:

Alkalinity = [HCO3-] + 2 × [CO32-] = 2.00 × 10^(-3) mol/L

[HCO3-] + [CO32-] = Alkalinity / 2 = 1.00 × 10^(-3) mol/L

We can use the equilibrium constant expression for the first equilibrium to find the concentration of CO2:

K1 = [HCO3-][H3O+] / [CO2] = 4.45 × 10^(-7) (at 25°C)

[CO2] = [HCO3-][H3O+] / K1 = (1.00 × 10^(-3) mol/L)(1.96 × 10^(-8) mol/L) / 4.45 × 10^(-7) = 4.37 × 10^(-12) mol/L

We can use the equilibrium constant expression for the second equilibrium to find the concentration of CO32-:

K2 = [CO32-][H3O+] / [HCO3-] = 4.69 × 10^(-11) (at 25°C)

[CO32-] = K2[HCO3-] / [H3O+] = (4.69 × 10^(-11))(1.00 × 10^(-3) mol/L) / (1.96 × 10^(-8) mol/L) = 2.39 × 10^(-6) mol/L

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Write the balanced equation for the reaction of aqueous Pb(ClO3)2Pb(ClO3)2 with aqueous NaI.NaI. Include phases

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I wish there was a way for me to repost your question

Write the structural formula for the product that forms when 1-methylcyclopentene reacts with KMnO4, OH-, heat, then H3O .

Answers

The reaction between 1-methylcyclopentene and [tex]KMnO_4[/tex], OH-, heat, and [tex]H_3O[/tex] can lead to the formation of a number of different products depending on the reaction conditions and structural formula.

One possible product is the oxidation of 1-methylcyclopentene to form a hydroperoxide:

1-methylcyclopentene +  [tex]KMnO_4[/tex] + OH- → 1-methylcycloperoxyethane +  [tex]MnO_2[/tex] +  [tex]H_2O[/tex]

Another possible product is the oxidation of 1-methylcyclopentene to form a cycloalkene carboxylic acid:

1-methylcyclopentene +  [tex]KMnO_4[/tex] + OH- → 1-methylcyclohexenecarboxylic acid +  [tex]MnO_2[/tex] + [tex]H_2O[/tex]

A third possible product is the oxidation of 1-methylcyclopentene to form a carbonyl compound and an alcohol:

1-methylcyclopentene +  [tex]KMnO_4[/tex] + OH- → 3-methyl-2-butenal + [tex]MnO_2[/tex] +  [tex]H_2O[/tex]

It is important to note that these reactions can be complex and involve multiple steps, depending on the specific conditions. The final products will also depend on the reactant ratios and the reaction conditions.  

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"strongbox = a small lockable box, typically made of metal, in which valuables may be kept." This is an example of what word formation process? Group of answer choices alternation suppletion compounding conversion clipping blending

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The example "strongbox = a small lockable box, typically made of metal, in which valuables may be kept" is an example of compounding.

Compounding is a word formation process in which two or more words are combined to create a new word that has a meaning that is different from the meanings of the individual words. In this case, "strong" and "box" are combined to create a new word, "strongbox," which refers to a specific type of lockable container for valuables.

The word "strongbox" is an example of compounding, which is a word formation process that involves combining two or more separate words to create a new word. In this case, the two separate words are "strong" and "box." Compounding is a common process in English and can result in new words that have a specific meaning or usage.

What is compounding?

Compounding is a word formation process in which two or more separate words are combined to create a new word that typically has a specific meaning or usage.

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True or False [2 pts]: A photon must have exactly the right energy to excite an electron from one energy level to another energy level.

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The given statement "A photon must have exactly the right energy to excite an electron from one energy level to another energy level" is false because a photon's energy needs to be equal to or greater than the difference in energy between the two levels to excite an electron to a higher energy level, not exactly the same amount.

A photon doesn't need to have exactly the same amount of energy as the difference between the two energy levels to excite an electron from one energy level to another. Instead, the photon's energy must be equal to or greater than the difference between the two energy levels.

If the photon has more energy than the required amount, the excess energy will be transferred to the electron as kinetic energy. This process is called the photoelectric effect, which is the emission of electrons from a material when light of sufficient frequency (or energy) shines on it.

Therefore, a photon with a higher frequency (or energy) than the required amount can excite an electron to a higher energy level. The electron will then have excess kinetic energy, which can be transferred to surrounding atoms or molecules as heat.

Conversely, a photon with less energy than the required amount will not be able to excite the electron to a higher energy level. In summary, a photon's energy needs to be equal to or greater than the difference in energy between the two levels to excite an electron to a higher energy level, but it doesn't need to be exactly the same amount..

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How can a medical examiner tell the difference between a death by suffocation and a death by carbon monoxide poisoning

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A medical examiner can differentiate between death by suffocation and death by carbon monoxide poisoning by conducting an autopsy and examining the body, as well as investigating the circumstances surrounding the death.

Autopsy: During an autopsy, the medical examiner will examine the body for physical signs of suffocation, such as bruises, petechiae (small red or purple spots on the skin caused by bleeding), or damage to the throat, lungs, and airways.

In cases of carbon monoxide poisoning, the medical examiner may look for signs such as cherry-red skin, mucous membranes, and organs, which can indicate high levels of carbon monoxide in the bloodstream.

Toxicology: The medical examiner may also conduct toxicology tests to detect the presence of carbon monoxide in the blood. High levels of carbon monoxide can indicate carbon monoxide poisoning.

Circumstances of death: The medical examiner will also investigate the circumstances surrounding the death, such as whether the victim was found in an enclosed space or near a source of carbon monoxide, such as a car or generator. In cases of suffocation, the circumstances may suggest that the victim was intentionally or accidentally smothered or strangled.

In summary, a combination of physical examination, toxicology tests, and investigation of the circumstances surrounding the death can help a medical examiner differentiate between death by suffocation and death by carbon monoxide poisoning.

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What mass of platinum could be plated on a electrode from the electrolysis of Pt(NO3)2 solution with a current of o.500 A for 55.0 s

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0.111 g of platinum could be plated on the electrode under the given conditions. when electrolysis of Pt(NO3)2 solution with a current of o.500 A for 55.0 s.

To calculate the mass of platinum plated on the electrode, we will use the following terms: current (I), time (t), molar mass of platinum (M_Pt), Faraday's constant (F), and the stoichiometry of the reaction (n).

In this case, we have:
I = 0.500 A
t = 55.0 s
M_Pt = 195.08 g/mol (platinum)
F = 96485 C/mol (Faraday's constant)
n = 2 (from Pt(NO3)2, where 2 moles of electrons are required to reduce 1 mole of Pt)

First, find the total charge (Q) passed through the solution:
Q = I × t = 0.500 A × 55.0 s = 27.5 C

Now, use Faraday's law to find the moles of platinum plated:
Moles of Pt = (Q × n) / F = (27.5 C × 2) / 96485 C/mol = 0.000569 mol

Finally, find the mass of platinum plated:
Mass of Pt = Moles of Pt × M_Pt = 0.000569 mol × 195.08 g/mol = 0.111 g

Therefore, 0.111 g of platinum could be plated on the electrode under the given conditions.

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How much EDTA, glucose, and Tris would you need to make 345 mL of a 16 mM EDTA, 0.24% Glucose, 75 mM Tris solution

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The 345 mL of a 16 mM EDTA, 0.24% glucose, 75 mM Tris solution, you will need 16.98 g of EDTA, 0.828 g of glucose, and 3.152 g of Tris. Dissolve each compound in the appropriate amount of distilled water, adjust the pH to the desired value, and then bring the final volume up to 345 mL with distilled water.

To make a 16 mM EDTA, 0.24% glucose, 75 mM Tris solution with a final volume of 345 mL, we first need to calculate the amount of each reagent required:

EDTA:

To make a 16 mM solution in 345 mL, we need to multiply the molarity by the volume and the molar mass of EDTA to get the number of moles required:

16 mM x 0.345 L x 292.24 g/mol = 16.98 g EDTA

Glucose:

0.24% glucose means 0.24 g glucose per 100 mL solution, so for 345 mL:

0.24 g/100 mL x 345 mL = 0.828 g glucose

Tris:

To make a 75 mM solution in 345 mL, we need to multiply the molarity by the volume and the molar mass of Tris to get the number of moles required:

75 mM x 0.345 L x 121.14 g/mol = 3.152 g Tris

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If Spike was assigned BC, then he would combine 8.00 mL of ammonium chloride and 4.00 mL of ammonia to make his buffer.

a) true

b) false

Answers

The answer is true. Ammonium chloride and ammonia are commonly used to make a buffer with a pH range of 7.9-8.3.

Ammonium chloride is an acidic salt that dissociates in water to form ammonium ions (NH4+) and chloride ions (Cl-). Ammonia is a weak base that accepts hydrogen ions (H+) from water to form ammonium ions (NH4+) and hydroxide ions (OH-). When ammonium chloride and ammonia are mixed together, the ammonium ions act as an acid and the ammonia molecules act as a base, resulting in a solution that resists changes in pH. This buffer solution is commonly used in biological and chemical experiments that require a stable pH environment.

In this scenario, Spike was assigned BC and was instructed to combine 8.00 mL of ammonium chloride and 4.00 mL of ammonia to make his buffer. By combining these two solutions, Spike will create a buffer with a pH within the desired range of 7.9-8.3, which will enable him to maintain a stable environment for his experiment. Therefore, the answer is true.

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