Answer:
NHCOR
Explanation:
In electrophilic aromatic substitution, certain substituents on the aromatic ring such as
-NHCOR are known to enhance ortho-para substitution. These ortho-para activating groups stabilizes the intermediate cation.
These ortho-para activating groups usually consists of species that donate electron density towards the reaction centre thereby stabilizing the carbocation and making the reaction faster.
What volume is equivalent to 12.0m^3
how many mole of iron will be produced from 6.20 mole of carbon monboxide reacting with excess iron oxide
Answer:
6.20 mol
Explanation:
Step 1: Write the balanced reaction
FeO + CO → Fe + CO₂
Step 2: Establish the appropriate molar ratio
According to the balanced equation, the molar ratio of carbon monoxide (CO) to iron (Fe) is 1:1.
Step 3: Calculate the moles of Fe produced from 6.20 moles of CO
6.20 mol CO × (1 mol Fe/1 mol CO) = 6.20 mol Fe
any help is appreciated
Answer:
1.63×10¹⁰ L.
Explanation:
We'll begin by calculating the number of mole in 125 g of silver (ii) oxide, AgO. This can be obtained as follow:
Mass of AgO = 125 g
Molar mass of AgO = 108 + 16 = 124 g/mol.
Mole of AgO =?
Mole = mass /Molar mass
Mole of AgO = 125 /124
Mole of AgO = 1.01 moles.
Next, we shall convert 6.19×10¯⁵ μmol/L to mol/L. This can be obtained as follow:
1 μmol/L = 1×10¯⁶ mol/L
Therefore,
6.19×10¯⁵ μmol/L = 6.19×10¯⁵ × 1×10¯⁶ = 6.19×10¯¹¹ mol/L
Finally, we shall determine the volume as follow:
Molarity = 6.19×10¯¹¹ mol/L
Mole of AgO = 1.01 moles
Volume =?
Molarity = mole /Volume
6.19×10¯¹¹ = 1.01/Volume
Cross multiply
6.19×10¯¹¹ × volume = 1.01
Divide both side by 6.19×10¯¹¹
Volume = 1.01/6.19×10¯¹¹
Volume = 1.63×10¹⁰ L
Therefore, the volume of the solution is 1.63×10¹⁰ L
Assume that 1 mL of water contains 20 drops. How long, in hours, will it take you to count the number of drops in 4.21 gal of water at a counting rate of 10 drops/sec? 1 gal = 3.785 L. (3 significant figures, do not use scientific notation)
Answer:
8.85 hours (3 sf)
Explanation:
1 gal = 3.785 L
4.21 gal = x
x = 4.21 * 3.785 = 15.935 L
The relationship between mL and L is given as;
1000 mL = 1 L
x = 15.935L
x = 15.935 * 1000 = 15935 mL
The relationship between number of drops and mL is given as;
1 mL = 20 drops
15935 mL = x
x = 318 700 drops
The rate is 10 drops per sec
Rate = Number of drops / time
10 = 318700 / time
time = 31870 seconds
The question says to convert present the answer in hours so we convert time to hours by dividing the answer by 3600
Time = 31870 / 3600 = 8.85 hours (3 sf)
A sample of an unknown metal has a mass of 6.557 g. The metal was carefully added to a graduated cylinder containing 10.50 mL of water. The water level in the graduated cylinder rose to 11.16 mL. What is the density of the unknown metal?
Answer:
Explanation:
Be careful. The tricky part of the problem is that there are 4 places of sig digs.
m = 6.557 grams
V = 11.16 - 10.50 = 0.66
density = mass/ volume
density = 6.557/0.66 = 9.935 g/mL
What is the density of a 42.0 gram cube with a length of 5.0 cm, a width of 3.0cm, and height of 7.0cm
Answer: 0.4g per 1 cm3
Explanation:
5.0 × 3.0 × 7.0 = 105 cm3 this is the volume of cube
density is mass per unit of volume
d = m / V then 42g / 105 cm3 = 0.4 g/ 1 cm3
During complete oxidation of the fatty acid CH3(CH2)14COOH, ________ molecules of acetyl-CoA are produced, and the fatty acid goes through the β-oxidation cycle ________ times
Answer:
During complete oxidation of the fatty acid CH3(CH2)14COOH, eight molecules of acetyl-CoA are produced, and the fatty acid goes through the β-oxidation cycle seven times.
Explanation:
In the β-oxidation of fatty acids, an acetyl-CoA molecule is removed from the fatty acid chain after every β-oxidation cycle that the fatty acid undergo, leaving behind a fatty acyl-CoA molecule shortened by two cabon atoms..
The removal of the acetyl-CoA molecule starts from the carboxyl end and shortens the fatty acid molecule by two carbon units. Successive β-oxidation cycles results in the complete oxidaton of the fatty acid molecle to acetyl -CoA molecules.
The compound CH3(CH2)14COOH, is a 16-carbon saturated fatty acid molecule known as palmitic acid.. It undergoes seven passes through the β-oxidation cycle to yield eight molecules of acetyl-CoA with each cycle yielding an acetyl-CoA molecule and a fatty acyl-CoA shortened by two carbon atoms. Finally, the seventh step yields two acetyl-CoA molecules.
During complete oxidation of CH3(CH2)14COOH, eight (8) molecules of acetyl-CoA are produced, and the fatty acid goes through the β-oxidation cycle seven (7) times.
Cellular respiration refers to a series of metabolic reactions by which aerobic cells use the energy stored in the chemical bonds of foods and oxygen to produce ATP and carbon dioxide.Cellular respiration has three stages: glycolysis, the Krebs cycle (also called TCA or tricarboxylic acid cycle) and oxidative phosphorylation.During the TCA cycle, a fatty acid containing a hydrocarbon tail of N atoms of carbons undergoes an amount of (N/2)−1 rounds of β-oxidation to be oxidized.Palmitic acid [chemical formula: CH3(CH2)14COOH] is a fatty acid with 16 carbon atoms in which 7 successive rounds of oxidation must take place to produce 8 acetyl-CoA molecules.In conclusion, during complete oxidation of CH3(CH2)14COOH, eight (8) molecules of acetyl-CoA are produced, and the fatty acid goes through the β-oxidation cycle seven (7) times.
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A chemist must prepare of aqueous copper(II) fluoride working solution. He'll do this by pouring out some aqueous copper(II) fluoride stock solution into a graduated cylinder and diluting it with distilled water. Calculate the volume in mL of the copper(II) fluoride stock solution that the chemist should pour out.
Answer:
See answer below
Explanation:
First, you are not putting the whole data, however, I found an exercise very similar to this, so I'm gonna use this data, as an example, and you can use it as guide to solve yours. The exercise is the following:
A chemist must prepare 275. mL of 1967 uM aqueous copper(II) fluoride (Cur) working solution. He'll do this by pouring out some 2.63 mmol/L aqueous copper(II) fluoride stock solution into a graduated cylinder and diluting it with distilled water. Calculate the volume in mL of the copper(II) fluoride stock solution that the chemist should pour out.
According to this, we want a more dilluted solution fo copper Fluoride solution. To do this, we need to know the moles that are required in the desired solution.
1967 uM in just mol/L is:
1967 uM * 1 M / 1x10⁶ uM = 1.967x10⁻³ M
Now that we have the concentration, we can calculate the moles required to prepare this solution:
moles = 1.967x10⁻³ mol/L * 0.275 L = 5.41x10⁻⁴ moles
These are the moles that we need to have to prepare this solution. Now, with the concentration of the stock solution, we just solve for the volume required:
V = moles / M
V = 5.41x10⁻⁴ / 2.63x10⁻³
V = 0.2057 L ----> 205.7 mL or 206 mL
Complete and balance the equation for this reaction in acidic solution.
BrO−3+Sb3+⟶Br−+Sb5+
Answer:
6 H⁺ + BrO₃⁻ + 3 Sb³⁺ ⟶ Br⁻ + 3 H₂O + 3 Sb⁵⁺
Explanation:
Step 1: Write the unbalanced reaction
BrO₃⁻ + Sb³⁺ ⟶ Br⁻ + Sb⁵⁺
Step 2: Identify both half-reactions
Reduction: BrO₃⁻ ⟶ Br⁻
Oxidation: Sb³⁺ ⟶ Sb⁵⁺
Step 3: Perform the mass balance, adding H⁺ and H₂O where appropriate
6 H⁺ + BrO₃⁻ ⟶ Br⁻ + 3 H₂O
Sb³⁺ ⟶ Sb⁵⁺
Step 4: Perform the charge balance, adding electrons where appropriate
6 H⁺ + BrO₃⁻ + 6 e⁻ ⟶ Br⁻ + 3 H₂O
Sb³⁺ ⟶ Sb⁵⁺ + 2 e⁻
Step 5: Multiply both half-reactions by numbers that assure that the number of electrons gained and lost is the same
1 × (6 H⁺ + BrO₃⁻ + 6 e⁻ ⟶ Br⁻ + 3 H₂O)
3 × (Sb³⁺ ⟶ Sb⁵⁺ + 2 e⁻)
Step 6: Add both half-reactions and cancel what is repeated in both sides
6 H⁺ + BrO₃⁻ + 3 Sb³⁺ ⟶ Br⁻ + 3 H₂O + 3 Sb⁵⁺
If a brownie that measures 15 cm * 7 cm * 7 cm and has a density of 2.3 g/cm^ ^ 3 is cut in half what will happen to the density of the brownie ? *
Answer:
unchanged
Explanation:
The density of an object or of a substance is independent of the amount of substance. From the definition of density as mass per unit volume, the ratio of the mass of an object to the volume of the same object is always constant. The more the mass of the object, the more the volume, and vice-versa.
Hence, if a brownie that measures 15 cm by 7 cm by 7cm and has a density of 2.3 g/cm^3 is cut into half, both the mass and the volume would change in equal proportion and the density would remain the same.
To determine the concentration of SO4 2– ion in a sample of groundwater, 100.0 mL of the sample is titrated with 0.0250 M Ba(NO3)2, forming insoluble BaSO4. If 7.48 mL of the Ba(NO3)2 solution is required to reach the end point of the titration, what is the molarity of the SO4 2–?
Answer:
1.87x10⁻³ M SO₄²⁻
Explanation:
The reaction of SO₄²⁻ with Ba²⁺ (From Ba(NO₃)₂) is:
SO₄²⁻(aq) + Ba²⁺(aq) → BaSO₄(s)
Where 1 mole of SO₄²⁻ reacts per mole of Ba²⁺
To reach the end point in this titration, we need to add the same moles of Ba²⁺ that the moles that are of SO₄²⁻.
Thus, to find molarity of SO₄²⁻ we need to find first the moles of Ba²⁺ added (That will be the same of SO₄²⁻). And as the volume of the initial sample was 100mL we can find molarity (As ratio of moles of SO₄²⁻ per liter of solution).
Moles Ba²⁺:
7.48mL = 7.48x10⁻³L ₓ (0.0250moles / L) = 1.87x10⁻⁴ moles of Ba²⁺ = Moles of SO₄²⁻
Molarity SO₄²⁻:
As there are 1.87x10⁻⁴ moles of SO₄²⁻ in 100mL = 0.1L, molarity is:
1.87x10⁻⁴ moles of SO₄²⁻ / 0.1L =
1.87x10⁻³ M SO₄²⁻Add coefficients to the reaction summary to show the net results of glycolysis. glucose+a ADP+b Pi+c NAD+⟶x pyruvate+y ATP+z NADH You do not need to add the water and hydrogen ions necessary to balance the overall reaction.
Then, Draw the structure of pyruvate at pH 7.4.
Answer:
See figure 1
Explanation:
For this question, we can start with the structure of pyruvic acid. In this molecule, we have two functional groups, the ketone group, and a carboxylic acid group.
In the acid group, we have an acidic hydrogen. That is, this hydrogen can leave the molecule to produce a hydronium ion ([tex]H^+[/tex]).
Now, to know what is the pH at which this hydrogen leaves the molecule we must look for the pKa value. Which for the case of this molecule is 2.45
If there is a pH value greater than 2.45, the molecule will lose hydrogen. In this case, we will have a value above 2.45 (7.4), which is why the conjugated acid of pyruvic acid will be produced, which is pyruvate.
Therefore, in the structure, we will have a negative charge on the acid group.
See figure 1
I hope it helps!
you have liquid A, which has a density of 2g/mL. Then you have liquid B with density 10g/mL. If you mix the two materials which one will float on the top
Answer:
Liquid A
Explanation:
If two liquids are mixed together, they will eventually separate based on their density. A liquid will float if it is less dense than the liquid it is placed in.
We are given two liquids, Liquid A and Liquid B.
Liquid A has a density of 2 g/mL
Liquid B has a density of 10 g/mL
2 is less than 10, therefore Liquid A is less dense than Liquid B.
We already established that the less dense liquid will float on top. Liquid A is less dense, so Liquid A will float on top.
The distance measured between five successive crests of a wave motion executed by a photon of an electromagnetic radiation is 2.4cm. what is the frequency of the photon
Answer:
6.25 ×10^10 Hz
Explanation:
If the distance between five successive crests is 2.4 cm, then the distance between each crest is 2.4/5 = 0.48 cm or 0.0048 m or 4.8 ×10^-3 m
Since the velocity of a wave is given by;
v= λf
Where;
λ= wavelength of the wave
f= frequency of the wave
But λ= distance between successive crests = 4.8 ×10^-3 m
v= 3×10^8 ms-1 (speed of electromagnetic waves in vacuum)
f= v/λ
f= 3×10^8 ms-1/4.8 ×10^-3 m
f= 0.625 ×10^11 Hz
f= 6.25 ×10^10 Hz
Which is an example of a compound?
Answer:
Octane - Formula: C8H^18 = Carbon^8 + Hydrogen^18
Explanation: Octane is a compound because there are 8 atoms of carbon and 18 atoms of hydrogen in one molecule of C8H18. There are also 8 moles of carbon and 18 moles of hydrogen.
PLEASE URGENT I will give MOST POINTS POSSIBLE For the following reactions, (a) write the balanced reaction equations and (b) IDENTIFY the type of reaction as ONE of the following: acid-base, precipitation, or redox (Only one reaction type applies to each reaction and all three should be used). For the acid-base reaction, label the acid, the base, the conjugate acid, and the conjugate base. Write an expression for the Ka of the reaction. For the precipitation reaction, if a solid is formed, indicate the solid. For the redox reaction, indicate what is oxidized, what is reduced, and write the corresponding half-reactions. Aqueous hydroiodic acid (HI) reacts with liquid water in a reversible reaction. Solid zinc reacts with solid manganese (IV) oxide producing solid zinc oxide and solid manganese (III) oxide. Aqueous silver nitrate reacts with aqueous calcium chloride.
Answer:
see below
Explanation:
Aqueous hydroiodic acid reacts with liquid water in a reversible reaction.
2 HI + 2 H₂O ⇔ 2 H₃O + I₂
This is an acid-base reaction. HI is the acid, and H₂O is the base. The conjugate acid is H₃O, and the conjugate base is I₂. You can figure out the acid and base by a using a table of strong/weak acids and bases. The conjugate will have one less or one more H⁺ depending on if it's an acid or a base.
The expression for Kₐ of the reaction is below. You have to put the acid and its conjugate base on the top and the base and its conjugate on the bottom. I didn't put in H₂O since, although it is the base in this equation, it isn't really a base.
[tex]K_{a}=\frac{[HI][H_{3}O] }{[I_{2}] }[/tex]
Solid zinc reacts with solid manganese (IV) oxide producing solid zinc oxide and solid manganese (III) oxide.
Zn + 2 MnO₂ ⇒ ZnO + Mn₂O₃
This is a redox reaction. The Zn is being oxidized, and the Mn is being reduced.
Oxidation: Zn ⇒ Zn⁺² + 2 e⁻
Reduction: Mn⁺⁴ + e⁻ ⇒ Mn⁺³
Aqueous silver nitrate reacts with aqueous calcium chloride.
2 AgNO₃ + CaCl₂ ⇒ 2 AgCl + Ca(NO₃)₂
This is a precipitation reaction. You have two soluble salts combing to form a solution. You now need to figure out which of the compounds produced are not soluble. AgCl is the compound that is not soluble in water, making it the precipitate.
I think I covered everything. If I missed something let me know.
why graphite is a nonmetal, why it is not included in metalloid.
Graphite is a not metal because of the lack of the properties
Metals are ductile but graphite is not ductileMetals are meleable but graphite is not meleablemetal are sonorous but. graphite is not sonorousMetal are lustrous but graphite is not lustrousGraphite contains only one property of metal
metal is a good conductor of electricity but its a exception.
Because of all that reasons graphite is not included in metalloid.
Hope it helps u mate
Which one of the following items does NOT characterize a reducing agent? a. A reducing agent loses electrons. b. A reducing agent causes another species to be reduced. c. The oxidation number of a reducing agent increases. d. A good reducing agent is a metal in a high oxidation state, such as Mn7+.
Answer: D
Explanation:
A reducing agent is a species that reduces other compounds, and is thereby oxidized. The whole compound becomes the reducing agent. In other words, of a compound is oxidized, then they are the reducing agent. On the other hand, if the compound is reduced, it is an ozidizing agent.
Since we have established that a reducing agent is the compound being oxidized, we know that A is not our answer. An oxidized compound is losing electrons. Choice A states exactly this.
For B, this is true as we have established this already.
C is also correct. Since a reducing agent loses electrons, it becomes more positive. This makes the oxidation number increase.
D would be our correct answer. It is actually a good oxidizing agent is a metal in a high oxidation state, such as Mn⁷⁺.
A nurse is preparing to administer 4300 units of Heparin which available in 2000 units/mL. How many mL should the nurse administer?
a. 12.9 mL
B. 1.29 mL
C. 2.15 mL
D. 16.0 mL
E. 3.00 mL
HELP ASAP
THANKS!
Taking into account the definition of units/mL, the correct option is option C. The nurse should administer 2.15 mL.
Heparin is an anticoagulant drug used in the treatment and prevention of blood clots caused by certain medical conditions or medical procedures. Heparin is also used before surgery to reduce the risk of blood clots. That is, this drug works by decreasing the blood's ability to clot.
The results of some medical tests are reported in units per milliliter (u/mL). This unit of concentration expresses unit of activity per unit of volume.
In this case, Heparin is available in 2,000 units/mL ands this means that for every 1 mL, there are Heparin 2,000 units.
Then you can apply the following rule of three: if 2,000 units are present for every 1 mL, 4,300 units are present in how many mL?
volume= (4,300 units× 1 mL) ÷ 2,000 unita
Solving:
volume= 2.15 mL
In summary, the correct option is option C. The nurse should administer 2.15 mL.
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Answer:
Amphetamine | C9H13N | CID 3007 - structure, chemical names, physical and chemical properties , ... Defined Bond Stereocenter Count, 0, Computed by PubChem ... Collision Energy, 10 eV .
Which is a chemical process? a. melting of lead b. dissolving sugar in water c. tarnishing of silver d. crushing of stone
Answer:
a melting of lead Is the answer
If 0.200 moles of AgNO₃ react with 0.155 moles of H₂SO₄ according to this UNBALANCED equation below, what is the mass in grams of Ag₂SO₄ that could be formed? AgNO₃(aq) + H₂SO₄ (aq) → Ag₂SO₄ (s) + HNO₃ (aq)
Answer:
31.2 g of Ag₂SO₄
Explanation:
We'll begin by writing the balanced equation for the reaction. This is given below:
2AgNO₃(aq) + H₂SO₄ (aq) → Ag₂SO₄ (s) + 2HNO₃ (aq)
From the balanced equation above,
2 moles of AgNO₃ reacted with 1 mole of H₂SO₄ to produce 1 mole of Ag₂SO₄ and 2 moles of HNO₃.
Next, we shall determine the limiting reactant.
This can obtained as follow:
From the balanced equation above,
2 moles of AgNO₃ reacted with 1 mole of H₂SO₄.
Therefore, 0.2 moles of AgNO₃ will react with = (0.2 x 1)/2 = 0.1 mole of H₂SO₄.
From the calculations made above, only 0.1 mole out of 0.155 mole of H₂SO₄ given is needed to react completely with 0.2 mole of AgNO₃. Therefore, AgNO₃ is the limiting reactant.
Next,, we shall determine the number of mole of Ag₂SO₄ produced from the reaction.
In this case we shall use the limiting reactant because it will give the maximum yield of Ag₂SO₄ as all of it is consumed in the reaction.
The limiting reactant is AgNO₃ and the number of mole of Ag₂SO₄ produced can be obtained as follow:
From the balanced equation above,
2 moles of AgNO₃ reacted to produce 1 mole of Ag₂SO₄.
Therefore, 0.2 moles of AgNO₃ will react to produce = (0.2 x 1)/2 = 0.1 mole of Ag₂SO₄.
Therefore, 0.1 mole of Ag₂SO₄ is produced from the reaction.
Finally, we shall convert 0.1 mole of Ag₂SO₄ to grams.
This can be obtained as follow:
Molar mass of Ag₂SO₄ = (2x108) + 32 + (16x4) = 312 g/mol
Mole of Ag₂SO₄ = 0.1
Mass of Ag₂SO₄ =?
Mole = mass /Molar mass
0.1 = Mass of Ag₂SO₄ /312
Cross multiply
Mass of Ag₂SO₄ = 0.1 x 312
Mass of Ag₂SO₄ = 31.2 g
Therefore, 31.2 g of Ag₂SO₄ were obtained from the reaction.
Taking into account the definition of reaction stoichiometry and limiting reagent, the mass of Ag₂SO₄ that could be formed is 31.18 grams.
First of all, the balanced reaction is:
2 AgNO₃ + H₂SO₄ → Ag₂SO₄ + 2 HNO₃
By reaction stoichiometry (that is, the relationship between the amount of reagents and products in a chemical reaction), the following amounts of moles of each compound participate in the reaction:
AgNO₃: 2 moles H₂SO₄: 1 mole Ag₂SO₄: 1 mole HNO₃: 2 molesThe limiting reagent is one that is consumed first in its entirety, determining the amount of product in the reaction. When the limiting reagent is finished, the chemical reaction will stop.
To determine the limiting reagent, you can use a simple rule of three as follows: if by stoichiometry 1 mole of H₂SO₄ reacts with 2 moles of AgNO₃, 0.155 moles of H₂SO₄ react with how many moles of AgNO₃?
[tex]amount of moles of AgNO_{3} =\frac{0.155 moles of H_{2}SO_{4} x 2 moles of AgNO_{3} }{1 mole of H_{2}SO_{4} }[/tex]
moles of AgNO₃= 0.31 moles
But 0.31 moles of AgNO₃ are not available, 0.200 moles are available. Since you have less moles than you need to react with 0.155 moles of H₂SO₄, AgNO₃ will be the limiting reagent.
Then, it is possible to determine the amount of moles of Ag₂SO₄ produced by another rule of three, using the limiting reagent: if by stoichiometry 2 moles of AgNO₃ produce 1 mole of Ag₂SO₄, 0.200 moles of AgNO₃ how many moles of Ag₂SO₄ will be formed?
[tex]amount of moles of Ag_{2} SO_{4} =\frac{1 mole of Ag_{2} SO_{4} x 0.200 moles of AgNO_{3} }{2 moles of AgNO_{3} }[/tex]
amount of moles of Ag₂SO₄ =0.100 moles
Finally, with 311.8 g/mole being the molar mass of Ag₂SO₄, then the mass produced of the compound can be calculated as:
[tex]0.100 molesx311.8 \frac{g}{mole} = 31.18 grams[/tex]
In summary, the mass of Ag₂SO₄ that could be formed is 31.18 grams.
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A ballon at 2.7atm has a volume of 1.6L.What will be the volume if the pressure is reduced to 1,3atm?
Answer:
3.3 L
Explanation:
Step 1: Given data
Initial pressure (P₁): 2.7 atmInitial volume (V₁): 1.6 LFinal pressure (P₂): 1.3 atmFinal volume (V₂): ?Step 2: Calculate the final volume of the balloon
Inside the balloon we have gas. If we consider it behaves as an ideal gas, we can calculate the final volume using Boyle's law.
P₁ × V₁ = P₂ × V₂
V₂ = P₁ × V₁ / P₂
V₂ = 2.7 atm × 1.6 L / 1.3 atm
V₂ = 3.3 L
Which of these statements best explains why chemistry is reliable?
Answer:
It gives the same result when an experiment is repeated.
Explanation:
Below are the possible answers to the question:
It is biased.
It cannot be verified.
It cannot add new evidence to existing evidence.
It gives the same result when an experiment is repeated.
The correct answer would be that it gives the same result when an experiment is repeated.
If a reaction is conducted in chemistry and certain results are obtained, once a detailed procedure of the experiment is known along with all the chemicals involved, such reaction/experiment can be repeated anywhere in the world and the same result would be obtained.
The repeatability of experiments always makes the experiments to be reliable. Hence, chemistry is reliable because it gives the same result without any variation when experiments are repeated under similar conditions.
Carboxypeptidases can be used to determine the entire sequence of short peptides (<50 amino acid residues) and it starts by reacting with the C-terminal amino acid.
a. True
b. False
Answer:
A. True
Explanation:
Carboxypeptidases are enzymes which function in the digestion of short peptides known as oligopeptides in the small intestine. Oligopeptides contain between 10 to 50 amino acid residues.
The two carboxypeptidases A and B involved in the digestion of proteins in the small intestine are secreted by the exocrine glands of the pancreas.They are both zinc-containing enzymes which remove successive carboxyl-terminal (C-terminal) residues from oligopeptides until free amino acids are obtained.
Since they function in this way, they can be used to determine the entire sequence of short peptides or oligopeptides.
3) Report how many significant figures each of the following numbers has and then write the number in
standard scientific notation.
Number
Number of Significant Figures
Standard Scientific Notation
0.0000620
0.05600
70820.0
309100
Answer:
Number of Significant Figures
0.0000620 = 6
0.05600 = 3
70820.0 = 5
309100 = 6
Standard Scientific Notation
0.0000620 = 6.2 * [tex]10^{-5}[/tex]
0.05600 = 5.6 * [tex]10^{-2}[/tex]
70820.0 = 7.082 * [tex]10^{4}[/tex]
309100 = 3.091 * [tex]10^{5}[/tex]
A conversion factor set up correctly to convert 15 inches to cm is _______.
A) 100 cm/1 m.
B) 1 inch/2.54 cm.
C) 1 cm/10 mm.
D) 2.54 cm/1 inch.
E) 10 cm/1 inch.
Answer:
e is the correct one , hope I helped u
Explain why the ability of PLP to catalyze an amino acid transformation is greatly reduced if the OH substituent of pyridoxal phosphate is replaced by OCH3. Explain why the ability of PLP to catalyze an amino acid transformation is greatly reduced if the substituent of pyridoxal phosphate is replaced by . One of the steps in all amino acid transformations is removal of a hydrogen atom from the OH substituent of pyridoxal phosphate. One of the steps in all amino acid transformations is removal of the OH substituent of pyridoxal phosphate. The hydrogen of the OH substituent forms a hydrogen bond with the nitrogen of the imine linkage. g
Answer:
Explanation:
It should be noted that, the principle behind the ability of PLP to catalyze an amino acid transformation is greatly reduced if the OH substituent of pyridoxal phosphate is replaced by OCH3 is that; the OH is able to form a H-bond with the N which puts partial (+) on the N. This makes it easier for the AA to add to the imine C
OCH3 cannot make this H-bond w N
For the reaction PCl5(g) <--> PCl3(g) Cl2(g) at equilibrium, which statement correctly describes the effects of increasing pressure and adding PCl5, respectively
The given question is incomplete. The complete question is :
For the reaction [tex]PCl_5(g)\rightleftharpoons PCl_3(g)+Cl_2(g)[/tex] at equilibrium, which statement correctly describes the effects of increasing pressure and adding [tex]PCl_5[/tex], respectively
a) Increasing pressure causes shift to reactants, adding [tex]PCl_5[/tex] causes shift to products.
b) Increasing pressure causes shift to products ,adding [tex]PCl_5[/tex] causes shift to reactants.
c) Increasing pressure causes shift to products, adding [tex]PCl_5[/tex] causes shift to products.
d) Increasing pressure causes shift to reactants,adding [tex]PCl_5[/tex] causes shift to reactants
Answer: Increasing pressure causes shift to reactants, adding [tex]PCl_5[/tex] causes shift to products.
Explanation:
Any change in the equilibrium is studied on the basis of Le-Chatelier's principle.
This principle states that if there is any change in the variables of the reaction, the equilibrium will shift in the direction to minimize the effect.
For the given equation:
[tex]PCl_5(g)\rightleftharpoons PCl_3(g)+Cl_2(g)[/tex]
a) If the pressure is increased, the volume will decrease according to Boyle's Law. Now, according to the Le-Chatlier's principle, the equilibrium will shift in the direction where decrease in pressure is taking place. As the number of moles of gas molecules is lesser at the reactant side. So, the equilibrium will shift in the left direction. i.e. towards reactants.
b) If [tex]PCl_5[/tex] is added, the equilibrium will shift in the direction where [tex]PCl_5[/tex] is decreasing. So, the equilibrium will shift in the right direction. i.e. towards products.
Calcutale Grxn for the following equation at 25°C:
4KClO3(s) → 3KClO4(s) KCl(s)
Answer:
-133.2 kJ
Explanation:
Let's consider the following balanced equation.
4 KClO₃(s) → 3 KClO₄(s) + KCl(s)
We can calculate the standard Gibbs free energy of the reaction (ΔG°rxn) using the following expression.
ΔG°rxn = 3 mol × ΔG°f(KClO₄(s)) + 1 mol × ΔG°f(KCl(s)) - 4 mol × ΔG°f(KClO₃(s))
ΔG°rxn = 3 mol × (-303.1 kJ/mol) + 1 mol × (-409.1 kJ/mol) - 4 mol × (-296.3 kJ/mol)
ΔG°rxn = -133.2 kJ