The chemical formula which represents the actual number of atoms of each element present in a molecule is known as :
A empirical formula
B atomic formula
C molecular formula
D none of the above

Answers

Answer 1

The molecular formula is the chemical formula that indicates the precise amount of atoms of each element that make up a molecule.

The number of atoms of each element really present in a molecule is indicated by the molecular formula. It is used to determine the type of molecule and offers the precise makeup of a molecule. The molecular formula, which takes into account all of the atoms in the molecule and not simply the smallest whole-number ratio of atoms, is the most precise and accurate approach to describe the structure of a molecule. The empirical formula, on the other hand, gives the simplest whole-number ratio of atoms in a molecule but does not always indicate the precise number of atoms present. On the other hand, the atomic formula specifies how many atoms of each element are included in a single atom.

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Related Questions

A gram of cola contains about 39 grams of sucrose, C₁₂H₂₂O₁₁. How many moles of sucrose does this represent?

Answers

The moles of 39 grams sucrose (C₁₂H₂₂O₁₁) does represent in a gram of cola = 0.11 moles

How to determine the mole?

Moles (mol) are amounts of substances measured in Avogadro's number (6.022 x 10²³) of atoms and molecules.

The mole unit, as well as the ability to convert masses in grams to moles, are critical for chemical reactions. The number of moles of a substance in a sample is calculated by dividing the mass in g by the molar mass, which yields the amount in moles.

Hence,

Molar mass of sucrose:

= (12 x 12) + (22 x 1) + (11 x 16)

= 342 gr/mol

Moles of sucrose = mass of sucrose / molar mass of sucrose

= 39 / 342

= 0.11 moles

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if you need more amino acids, which of these is the best:A. Eat more beansB. Go to the bathroomC. Lift weightsD. Get more sleep

Answers

The correct option is (A). For more amino acids, eating more beans is suggested. With a balance diet.

Beans are a member of the legume family of high-protein plant foods. These foods offer a supply of all nine essential amino acids in addition to being excellent sources of protein. These amino acids, in contrast to the 11 non-essential amino acids, are regarded as essential because they can only be obtained through diet. Even though the levels of these elements vary among beans, they all have a comparable ratio of vital amino acids.

Lysine

Your lysine intake can be drastically decreased by cutting out animal products from your diet. This is due to the fact that most plant-based meals lack this crucial amino acid. Beans are an exception to this rule, just as other legumes. For instance, a 140-pound individual can have 2 to 2.5 cups of cooked kidney beans, black beans, garbanzo beans, or edamame, a whole soybean product, to meet her daily lysine requirements. This is equal to four to five servings a day, which is within the recommended 5.5 ounce-equivalents of protein per day from the U.S. Department of Agriculture.

You should consume more nutrient-dense and high-fiber meals, according to the USDA. Increasing your bean intake is a good way to get the rewards of a high-fiber diet, which include better digestion, blood sugar control, cholesterol control, and weight loss or maintenance. Beans are high in protein, fibre, carbs, vitamins, and minerals yet having comparatively few calories and fats. Due to their high nutrient content, the USDA advises counting a serving of beans (1/2 cup) as two servings: one of vegetables and one of protein-containing foods. While you shouldn't only rely on beans to meet your needs for essential amino acids, they may be a wonderful addition to a diet that is well-balanced and contains a range of protein sources.

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Draw the structural formulas for the organic products of hydrolysis of this acetal in aqueous HCl.

Answers

The structural formula for acetal hydrolysis in water HCl. (View image)

This problem is based on the concept of hydrolysis. Addition of aqueous acids to acetals results in the formation of aldehydes and ketones. Acetals are derivatives of aldehydes and ketones. When a hemiacetal is subjected to nucleophilic attack by an alcohol molecule, acetal formation occurs.

When the cyclic acetal undergoes hydrolysis in the presence of an aqueous acid i.e. HCl, the formation of a ketone occurs. In this case, methanol (CH₃OH) is a by-product. The stereochemistry of the products will be the same as the reactants. If the binding is drawn on the plane of the paper, the binding that is off the page is a wedge bond. On the other hand, ties that are at the back of the page are dotted bonds.

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Which of the following statements regarding free energy is NOT true? a. Free energy represents the maximum work that a thermodynamic system can perform during a spontaneous change. b. Free energy represents the minimum work that would be required to make a thermodynamic system undergo a nonspontaneous change. c. The free energy of a system increases during the course of a spontaneous reaction as the entropy of the universe increases. d. The Gibbs free energy change of a reaction reflects the work associated with processes happening at constant temperature and pressure. e. The Gibbs free energy of a spontaneous process is negative.

Answers

The statements which not true are: Free energy represents the minimum work which would be required to make a thermodynamic system undergo a nonspontaneous change; and, the free energy of a system increases during the course of a spontaneous reaction as the entropy of the universe increases. The correct options are B and C.

What does free energy represent?

In thermodynamics, free energy means the energy like property or state function of a system in thermodynamic equilibrium. Free energy has the dimensions of energy, and its value is measured by the state of the system and not by its history. Free energy is used to measure how systems change and how much work they can produce.

What are the characteristics of free energy?

Free energy (G) is defined as H−TS where H and S are enthalpy and entropy of the system respectively T = temperature. G is an extensive property when ΔG = G2 − G1 that is the free energy change among the initial and final states of the system. G has a single value for the thermodynamic state of the system.

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Which of the following is(are) NOT a type of crystalline solid?A) covalent solidb) molecular solidc) amorphous solidd) ionic solide) metallic solid

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Amorphous solid are not a type of crystalline solid.

Crystalline solids: Particles are arranged in a three dimensional order. The particles having an equal intermolecular forces. They have sharp melting point as well as they are anisotropic. They are also called true solids. Example: Benzoic acid, Diamond.

Amorphous solid: Amorphous has an irregular arrangement of solid particles. The intermolecular forces are not an equal. Also, the distance between the particles varies. They have an undefined geometric shape. They are also known as supercooled liquids. Example: Naphthalene, glass

Amorphous solids, lacking the three-dimensional long-range order of a crystalline material, which possess a more random arrangement of molecules, and exhibit short-range order over a few molecular dimensions, and have physical properties are quite different from those of their corresponding crystalline states.

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If two gases with pressures of 2 atm and 3 atm are mixed at a constant temperature, what will the total pressure be?.

Answers

Answer: 5 atm

Explanation: The total pressure of a mixture of gases is given by the Ideal Gas Law: PV = nRT, where P is the total pressure, V is the volume, n is the number of moles of gas, R is the ideal gas constant, and T is the temperature in kelvins.

In a constant temperature scenario, where the volume and the number of moles of the gases are kept constant, the total pressure of the mixture is simply the sum of the individual pressures of the gases. So in this case, the total pressure will be 2 atm + 3 atm = 5 atm.

a diver has a compressed air tank that is initially at . the tank is connected to a regulator such that the diver is breathing in air at 760 mmhg. the diver breathes in 0.50 l of air each breath, and takes about 12 breaths per minute. the diver will need to surface when the tank pressure reaches . the tank is made of thick metal and does not change from initial volume of 11 l. calculate the amount of time the diver can stay under water, and enter your answer in hours.

Answers

The diver can stay underwater for approximately 0.55 hours.

First, we need to convert the initial pressure and the final pressure to atmospheres (atm).

1 atm = 14.696 psi

So,

initial pressure = 3.0 * 10^3 psi = (3.0 * 10^3) / 14.696 atm = 205 atm

final pressure = 1.0 * 10^3 psi = (1.0 * 10^3) / 14.696 atm = 68 atm

Next, we need to find the volume of air the diver breathes in per minute.

Volume per breath = 0.5 L

Breaths per minute = 12 breaths

Volume per minute = Volume per breath * Breaths per minute = 0.5 L * 12 breaths = 6 L

Finally, we can calculate the time the diver can stay underwater using the ideal gas law.

P1V1 = P2V2

(205 atm) * 11 L = (68 atm) * (11 L + 6 L)

205 atm * 11 L = 68 atm * 17 L

205 * 11 = 68 * 17

2255 = 1176

Dividing both sides by 68, we get:

33 = 17.3

So, the number of minutes the diver can stay underwater is 33 minutes. To convert this to hours, we divide by 60:

Time = 33 minutes / 60 minutes/hour = 0.55 hours

Therefore, the diver can stay underwater for approximately 0.55 hours.

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Complete Question:

A diver has a compressed air tank that is initially at 3.0 * 10^3 psi. The tank is connected to a regulator such that the diver is breathing in air at 760 mmHg. The diver breathes in 0.50 L of air each breath and takes about 12 breaths per minute. The diver will need to surface when the tank pressure reaches 1.0 * 10^3 psi. The tank is made of thick metal and does not change from the initial volume of 11 L. Calculate the amount of time the diver can stay under water, and enter your answer in hours.

. analyze your ionized gas emission objects. do your objects display different colors - if so why?

Answers

Ionized gas emission objects, also known as nebulae, are clouds of ionized gas and dust in space that emit light due to the presence of highly excited atoms. The colors of nebulae can vary due to the different types of atoms and ions present, as well as the physical processes that are occurring within the nebula.

In a nebula, electrons can be excited by various means, such as ultraviolet radiation from a nearby star or shock waves from a supernova explosion. When these electrons recombine with ions, they emit light at specific wavelengths that correspond to different colors. For example, hydrogen gas emits light at red wavelengths, while oxygen gas emits light at green and blue wavelengths. The resulting color of a nebula is a combination of these individual colors, and can range from pink or red to blue or green, depending on the types and amounts of atoms present.

In addition, the physical processes that are occurring within a nebula can also impact its color. For example, a nebula that is undergoing gravitational collapse to form new stars will often appear blue due to the high levels of ultraviolet radiation being emitted by the forming stars. Conversely, a nebula that is being lit by a hot, young star may appear green due to the strong emissions from doubly-ionized oxygen.

In conclusion, the colors of ionized gas emission objects can vary greatly depending on the types of atoms and ions present, as well as the physical processes that are occurring within the nebula. This rich variety of colors provides insight into the complex astrophysical processes that are occurring in these objects and helps us to better understand the evolution of the universe.

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is volume conserved? ""the sneaky ethanol molecules"" ( lab 2)

Answers

No, volume is not conserved in general. It can change due to various factors such as temperature, pressure, and composition.

In general, volume is conserved in a closed system. However, in the context of "sneaky ethanol molecules" in a lab experiment, it is possible that the volume may not be conserved due to the behavior of the ethanol molecules.

Ethanol can evaporate or escape through leaks in the system, leading to a decrease in the overall volume. Additionally, if the ethanol reacts with other substances, it may contribute to a change in volume as well. Therefore, in specific situations involving "sneaky" ethanol molecules, volume conservation may not hold true.

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g a sample of chloroform is found to contain g of carbon, g of chlorine, and g of hydrogen. if a second sample of chloroform is found to contain g of carbon, what is the total mass of chloroform in the second sample?

Answers

To calculate the total mass of chloroform in the second sample, you need to use the molecular formula for chloroform, which is CHCl3.

This means that for every 1 gram of carbon in the sample, there will be 1.5 grams of chlorine and 3 grams of hydrogen, for a total of 5.5 grams of chloroform. So if the second sample contains 1 gram of carbon, then the total mass of chloroform in the sample will be 5.5 grams.

For example, if a reaction produces 1 mole of chloroform, then 3 moles of hydrogen and 1.5 moles of chlorine should be used. Knowing the molar ratios of the reactants and products in a reaction can help you determine the mass of chloroform produced or consumed.

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A compound is 40% carbon, 6. 7% hydrogen, and 53. 3% oxygen. What is the empirical formula? ch2o2 ch2o c2h4o c2h4o2.

Answers

The empirical formula of a compound is the simplest whole-number ratio of its atoms. Based on the percent composition of the compound, the empirical formula can be calculated as follows:

C: 40% = 4 atoms

H: 6.7% = 0.67 atoms (rounded to 1 atom)

O: 53.3% = 5.33 atoms (rounded to 6 atoms)

The empirical formula is therefore C2H4O2.

How is the empirical formula calculated from the elemental composition of a compound?

The empirical formula of a compound can be calculated from its elemental composition by dividing the number of atoms of each element by the greatest common factor. The resulting formula represents the smallest whole number ratio of atoms in the compound. For example, if a compound is 40% carbon, 6.7% hydrogen, and 53.3% oxygen, the number of atoms can be calculated as follows: 40 g of carbon corresponds to 10 moles, 6.7 g of hydrogen corresponds to 1 mole, and 53.3 g of oxygen corresponds to 6.5 moles. The empirical formula is then C2H4O, which represents the smallest whole number ratio of atoms in the compound.

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an empty container weighs 19.278 g. when the container is filled with water, it weighs 29.107 g including the weight of the container. when the same container is filled with an unknown liquid instead of water, it weighs 32.075 g including the weight of the container. what is the density (in g/ml) of the unknown liquid? assume that the density of water is 0.997 g/ml. round your answer to three significant figures.

Answers

The density of the unknown liquid is 2.984 g/ml. It can be calculated by calculate the volume and mass of water first.

To calculate the density of the unknown liquid, we can use the formula:

density = mass / volume

First, we need to find the volume of the container. We can do that by subtracting the weight of the empty container from the weight of the container filled with water:

Volume = (weight of container + water) - (weight of empty container)

= 29.107 g - 19.278 g

= 9.829 g

Next, we need to find the mass of the water in the container:

mass of water = density of water * volume of container

= 0.997 g/ml * 9.829 ml

= 9.813 g

So, the volume of the unknown liquid can be found by subtracting the mass of water from the weight of the container filled with the unknown liquid:

Volume of unknown liquid = (weight of container + unknown liquid) - (weight of empty container)

= 32.075 g - 19.278 g

= 12.797 g

Finally, the density of the unknown liquid can be found by dividing the mass of the unknown liquid by its volume:

density of unknown liquid = mass of unknown liquid / volume of unknown liquid

= (12.797 g - 9.813 g) / (12.797 ml - 9.829 ml)

= 2.984 g/ml

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we use the henderson-hasselbalch equation to determine how much strong base to add to a certain quantity of weak acid to make up a buffer at a given ph. why do we use the henderson-hasselbalch equation? why do we not just subtract or add molar amounts of acid and base

Answers

to calculate the amount of acid and conjugate base to be combined for the preparation of a buffer solution having a particular pH

ethanol has a heat of vaporization of 40.5 kj/mol, and a vapor pressure of 115 torr at 34.9 oc. at what temperature is the vapor pressure 760 torr? report the temperature to three sig figs in units oc.

Answers

Since there is no indication of pressure, we'll presume that it is 1 atm. This indicates that the chemical has a vapour pressure of 760 torr, or 1 atm, when it reaches its boiling point.

What is the temperature is related to vapour pressure?

The vapour pressure of a liquid is independent of the volume of the liquid in the container, whether it is one litre or thirty litres; both samples will have the same vapour pressure at the same temperature.

Temperature is the only factor that influences vapour pressure. There is no relationship between vapour pressure and temperature. Temperature and vapour pressure are inversely correlated. This implies that the vapour pressure of a liquid or solid increases along with its temperature.

Therefore, The relationship between vapour pressure and temperature is exponential, and it always rises as the temperature does.

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over the course of a chemical reaction, the gibbs free energy of the system decreases. the process is ________.

Answers

A decrease in Gibbs free energy (ΔG) of a system over the course of a chemical reaction indicates that the reaction is spontaneous, meaning that it will proceed without any external intervention.

This is because a spontaneous process is one in which the free energy of the system decreases, becoming more stable and releasing energy into the surrounding environment.

The Gibbs free energy is a thermodynamic quantity that takes into account both the enthalpy (ΔH) of a system, which is a measure of the heat transfer that occurs during a reaction and the entropy (ΔS) of the system, which is a measure of the degree of disorder or randomness in the system. The Gibbs free energy equation is given by ΔG = ΔH - TΔS, where T is the temperature in Kelvin.

A decrease in Gibbs free energy indicates that the enthalpy of the system has decreased or the entropy of the system has increased, or both. When ΔG is negative, the reaction is spontaneous and will proceed in the direction that releases energy, which is generally in the form of heat or light.

Therefore, a decrease in Gibbs free energy over the course of a chemical reaction is an indication that the reaction is spontaneous and will proceed without external intervention.

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Under constant pressure, a system of gases is sealed in a cylinder and then allowed to expand. What can you conclude about the work associated with this change?
A. Work is negative and is done to the system.
B. Work is negative and is done by the system.
C. Work is positive and is done to the system.
D. Work is positive and is done by the system.

Answers

Option D is correct.

In this scenario, work is positive and is done by the system. This is because the expansion of the gas results in an increase in its internal energy, which is equivalent to the work done by the system.

The increase in internal energy can be thought of as the transfer of energy from the system to its surroundings. When the gas expands, its volume increases, which results in a decrease in the pressure of the gas and an increase in its internal energy.

Work refers to the transfer of energy that occurs when a force acts on an object, causing it to move. In this scenario, we will examine work in a system of gases that is sealed in a cylinder and allowed to expand under constant pressure.

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Why do network solids typically have higher melting temperatures than molecular solids? A. Network solids have covalent bonds between all atoms of the crystal. B. Network and molecular solids typically have the same melting temperatures. C. All covalent substances have strong attractive forces between them. D. All covalent substances do not have strong attractive forces between them.

Answers

Option C is correct. Network solids typically have higher melting temperatures than molecular solids because all covalent substances having strong attractive forces between them.    

Covalent network solids are composed of atoms which is covalently bonded together into a three-dimensional network or layers of two-dimensional networks. Due to the strength of covalent bonds, covalent network solids having high melting points.

A molecular solid is a solid which is composed of molecules held together by the van der Waals forces. Because these dipole forces are weaker than to the covalent or ionic bonds, molecular solids are very soft and having relatively low melting temperature.

Molecular solids are of three types: Non-polar molecular solids, Polar molecular solids and Hydrogen-bonded molecular solids. Examples are HCl, F, O, N.

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which types of reactions are essentially opposites of one another?

Answers

Decomposition and synthesis are chemical processes that happen in opposition to one another.

A chemical substance splits or decomposes into two or more molecules during a decomposition process. The breakdown reaction is typically shown as AB A + B.

This sort of reaction is the opposite of synthesis reaction in that a final product or compound is converted into components or separate reactants. It is also known as chemical breakdown or chemical decomposition. An example of a decomposition reaction is CaCO3(s) CaO(s)+CO2(g).

Contrarily, in a synthesis process, different reactants come together to create a chemical molecule. As an illustration, the synthesis reaction CaO(s)+CO2(g) CaCO3(s) is the opposite of the decomposition process.

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an aluminum nail has an excess charge of 3.2 µc. how many electrons must be added to the nail to make it electrically neutral?

Answers

An aluminum nail has an excess charge of 3.2 µc. The number of the electrons must be added to the nail to make it electrically neutral is 2 × 10¹³.

The Excess charge in the nail = 3.2 × 10^-6 C

Let the charge required to the electrically neutral = x

3.2 × 10⁻⁶ + x = 0

x = - 3.2 × 10⁻⁶ C

The expression is as follows :

q = n e

where

q = the magnitude of charge,

e = charge of electron

n = number of electrons.

q = n e

- 3.2 × 10⁻⁶ = n × (- 1.6 × 10⁻¹⁹)

n = 2 × 10¹³

Thus, the  number of electrons to be added to the nail to make it electrically neutral is 2 × 10¹³.

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why do researchers think the first self-replicating molecule was rna?

Answers

Researchers believe that RNA was the first self-replicating molecule since RNA can both store hereditary data and catalyze synthetic responses, including the development of more RNA through self-replication.

This blend of qualities is remembered to have been basic at the beginning of life, as it gave a way for hereditary data to be passed on and for new duplicates of the hereditary material to be made, prompting the development of early living systems.

Moreover, RNA can exist in various structures, some of which can overlay into complex designs that might have worked with synthetic responses and the development of additional complicated molecules, further supporting that RNA assumed a vital part at the beginning of life.

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What is the average atomic mass of
the element in the data table?
Mass (amu)
Abundance (%)

0.3365
0.0632
99.60
[ ? ] amu

35.97
37.96
39.96

Answers

To find the average atomic mass, use the formula:
m1p1+m2p2+m3p3…
m is mass
p is percent (convert to decimal by dividing by 100)

So let’s put the numbers in:
(35.97)(0.003365)+(37.96)(0.000632)+(39.96)(0.996)
Now solve:
(0.12103905)+(0.02399072)+(39.80016)
39.94518977
That’s your average atomic mass.
The atomic mass is closest to Argon.

What are the examples of linkage isomerism?

Answers

An example of linkage isomerism is [CO(NH₃)₅(ONO)]Cl₂ (pentaamminenitro-O-cobalt(III)chloride) and [CO(NH₃)₅NO₂]Cl₂ (pentaamminenitro-N-cobalt (III) chloride).

Coordination compounds which have the same chemical composition but they have different properties as a result of their different modes of attachment of the ligand to the central atom through the different sites are known as linkage isomers and this process involving linkage is known as linkage isomerism.

In [CO(NH₃)₅(ONO)]Cl₂, is a red colored compound which is linked to the central atom through an oxygen (O) atom whereas in the case of  [CO(NH₃)₅NO₂]Cl₂, which is a yellow-colored compound,  the linkage to the central atom is through a nitrogen (N) atom.

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if ka for ha is 8.0×10−5, what is the value of the equilibrium constant for the reaction between ha and b ?

Answers

The value of the equilibrium constant for the reaction between HA (hydrochloric acid) and B (a generic base) can be found using the acid dissociation constant (Ka) of HA.

The reaction between HA and B can be represented as follows:

HA + B ⇌ A- + HB+

where A- represents the conjugate base of HA, and HB+ represents the conjugate acid of B.

The equilibrium constant for this reaction is given by the base dissociation constant (Kb) of B. The relationship between Ka and Kb can be described by the equation:

Kb = Kw / Ka

where Kw is the ion product constant for water (1.0 × 10^-14 at 25°C).

Using this equation, we can calculate the value of Kb if we know the value of Ka:

Kb = Kw / Ka = 1.0 × 10^-14 / 8.0 × 10^-5 = 1.25 × 10^-10

So, the value of the equilibrium constant for the reaction between HA and B is 1.25 × 10^-10.

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How can you make an item that is made of magnetic material become a permanent magnet instead of a temporary magnet

Answers

You can put it in a very strong magnetic field to make  an item that is made of magnetic material become a permanent magnet instead of a temporary magnet. Therefore, option 1 is correct.

What are three ways to make a permanent magnet?

Magnets are produced by subjecting ferromagnetic metals such as iron and nickel to magnetic fields. Magnets can be made in three ways: (1) One-touch method (2) Method of two touches (3) Making use of electric current.

A magnetic field is created, and the metal piece is transformed into a magnet by passing electricity through it. Controlling the electric supply changes the strength of the magnetic field.

Thus, option 1 is correct.

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Your question is incomplete, most probably your question was

How can you make an item that is made of magnetic material become a permanent magnet instead of a temporary magnet? *

1.You can put it in a very strong magnetic field. 2.You can heat it while it is being influenced by a magnetic field. 3. You can leave it in the magnetic field of an actual magnet for a long time. 4. You can do any of the above.​

what is the main intramolecular force between two molecules of propanoic acid?

Answers

The dominant intermolecular force in propionic acid is Hydrogen bonding. The two propionic molecules are joined through hydrogen bonding with each other.

The  main intramolecular force between two molecules of propanoic acid is the hydrogen bonding.

The intermolecular forces is the attractive force that occurs between the positive and the negative components of the molecules. The  main intramolecular force between the two molecules of the propanoic acid is the hydrogen bonding. The hydrogen bonding occurs between the hydrogen atom bonded with the high electronegative atom and the another more electronegative atom.

The hydrogen bonding are of the two types :

Intermolecular hydrogen bondingIntramolecular hydrogen bonding

Thus, the two molecules of the propanoic acid are held together by the intermolecular force of attraction that is hydrogen bonding.

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why are open coal mines (strip mines) more likely to result in acid mine drainage than are underground mines?

Answers

Coal deposits that are deep underground must be extracted by subsurface mining rather than by strip-mining. It is  because strip-mining would Require removal of large amounts of rock and soil.

Open coal mines (strip mines) are more likely to result in acid mine drainage than underground mines because the removal of top soil and vegetation exposes minerals and sulfides to air and water, leading to oxidation and the formation of sulfuric acid. This acid can then leach into surrounding water sources, contaminating them and posing environmental and health risks. In contrast, underground mines are protected from exposure to air and water, reducing the likelihood of acid mine drainage.

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When 14. 07 ml of hcl of unknown concentration (but less than that of the base) are reacted with 13. 00 ml of 2. 25 m naoh, 1. 63 kj of heat are released. What is the molarity of the hcl solution?.

Answers

When 14.07 ml of hcl of unknown concentration (but less than that of the base) are reacted with 13. 00 ml of 2. 25 m naoh, 1. 63 kj of heat are released. The molarity of the hcl solution is 0.0021 mol/L.

To calculate the molarity of the HCl solution, you can use the heat of reaction and the balanced equation for the reaction between HCl and NaOH:

HCl + NaOH → NaCl + H2O

The heat of reaction (ΔH) is given as 1.63 kJ. To calculate the molarity of the HCl solution, you need to use the equation for the heat of reaction in terms of the moles of reactants:

ΔH = -n . ΔHf

Where,

ΔHf = the standard heat of reaction

n = the number of moles of reactants, and the negative sign indicates that heat is released in the reaction.

Since the volume of NaOH is given in milliliters and its concentration is given in moles per liter, you can convert the volume to liters and calculate the number of moles of NaOH:

n (NaOH) = (13.00 ml) . (2.25 mol/L) / 1000 ml/L = 0.0295 mol

Next, use the stoichiometry of the reaction to find the number of moles of HCl:

n (HCl) = n (NaOH) = 0.0295 mol

Now that you know the number of moles of HCl, you can calculate its molarity:

M (HCl) = n (HCl) / V (HCl) = 0.0295 mol / (14.07 ml / 1000 ml/L) = 0.0021 mol/L

So, the molarity of the HCl solution is approximately 0.0021 mol/L.

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would you expect the pka of glycine’s carboxyl group to increase or decrease in the presence of an adjacent carboxylate ion?

Answers

The pKa of glycine's carboxyl group would decrease in the presence of an adjacent carboxylate ion.

pKa is a measure of the acidity of a molecule and is defined as the negative logarithm of the dissociation constant (Ka) of an acid.

In simpler terms, pKa tells us how easily a molecule will donate a proton (H+) and become a negatively charged ion. The higher the pKa, the less acidic the molecule is, meaning it is less likely to donate a proton.

When an adjacent carboxylate ion is present, it can form a salt bridge with the positively charged nitrogen in the amino group of glycine. This interaction stabilizes the negatively charged form of the carboxyl group, making it less likely to donate a proton. As a result, the pKa of the carboxyl group decreases, meaning it becomes more acidic.

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What is the prefix used to represent four in this nomenclature?
Responses
A quadquad
B tetratetra

Answers

It would be tetratetra because tetra is the greek prefix for four.

What is the molecular mass of Nitrogen?

Answers

14.0067 u  is the molecular mass of Nitrogen.

What is molecular mass ?

Molar mass is the mass of one mole of a substance, defined as its atomic or molecular mass in grams.  It is defined as the number of units (atoms, molecules, ions, etc.) in a substance that contains the same number of units as 12 grams of pure carbon-12. The molar mass of a substance is important because it provides a conversion factor between the  mass of a substance and the number of moles of a substance, allowing chemical reactions and composition of compounds to be more easily calculated. Molar mass can be calculated by summing the atomic masses of all atoms in a molecule of a substance. For example, the molar mass of water (H2O) is 18.015 g/mol. This means that 1 mole of water weighs 18.015 grams .

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