Twice bill's number added to 17 is 7. What is his number
H2SO4 + NH3 HSO4 - + NH4 + 12. H2SO4 goes to HSO4 - a) Did it gain or lose a proton? _________ b) Is it a Brønsted -Lowery acid or base? ___________ 13. NH3 goes to NH4 + a) Did it gain or lose a proton? ___________ b) Is it a Brønsted -Lowery acid or base? _________
Sulfuric acid loses a proton and acts as a Brønsted-Lowry acid, while ammonia gains a proton and becomes a Brønsted-Lowry base in their respective reactions.
In the reaction between sulfuric acid (H2SO4) and ammonia (NH3), when H2SO4 becomes HSO4-, it loses a proton. This change makes it a Brønsted-Lowry acid because a Brønsted-Lowry acid donates a proton in an acid-base reaction. On the other hand, when NH3 becomes NH4+, it gains a proton, which makes it a Brønsted-Lowry base, since a Brønsted-Lowry base accepts a proton.
Identify the missing daughter nucleus in the β– emission decay of 106ru below.
Nuclear reaction: ¹⁰⁶Ru → ¹⁰⁶Rh + e⁻(electron) + ve(electron antineutrino).
Beta decay is radioactive decay in which a beta ray and a neutrino are emitted from an atomic nucleus.There are two types of beta decay: beta minus and beta plus.
In beta minus decay, neutron is converted to a proton and an electron and an electron antineutrino.At 350°c, keq = 1.67 × 10-2 for the reversible reaction 2hi (g) ⇌ h2 (g) + i2 (g). what is the concentration of hi at equilibrium if [ h2 ] is 2.44 × 10-3 m and [ i2 ] is 7.18 × 10-5 m?
The equilibrium constant expression for the reaction 2HI (g) ⇌ H₂ (g) + I₂ (g) and given concentrations of H₂ and I₂ , we calculated the concentration of HI at equilibrium to be approximately 3.24 × 10⁻³ M. We used the equilibrium constant Keq = 1.67 × 10⁻² to solve for [HI].
To find the concentration of HI at equilibrium for the reaction 2HI (g) ⇌ H₂. (g) + I₂ (g) given Keq, [H₂] and [I₂], we can use the equilibrium constant expression:
Keq = [H2][I₂] / [HI]₂Given data:
Keq = 1.67 × 10⁻²[H₂] = 2.44 × 10⁻³M[I₂] = 7.18 × 10⁻⁵ MPlug these values into the equilibrium expression and solve for [HI]:
Keq = [H₂][I₂] / [HI]₂1.67 × 10⁻² = (2.44 × 10⁻³)(7.18 × 10⁻⁵) / [HI]₂First, calculate the numerator:
(2.44 × 10⁻³)(7.18 × 10⁻⁵) = 1.75192 × 10⁻⁷Now plug this back into the equation:
1.67 × 10⁻² = 1.75192 × 10⁻⁷ / [HI]₂Solving for [HI]₂ :
[HI]₂ = 1.75192 × 10⁻⁷ / 1.67 × 10⁻² ≈ 1.0496 × 10⁻⁵Taking the square root to find [HI]:
[HI] = √(1.0496 × 10⁻⁵) ≈ 3.24 × 10⁻³ M
Correct question is: At 350°C , keq = 1.67 × 10⁻² for the reversible reaction 2HI (g) ⇌ H₂ (g) + I₂ (g). what is the concentration of hi at equilibrium if [ H₂ ] is 2.44 × 10⁻³ m and [ I₂ ] is 7.18 × 10⁻⁵ m?
Which of the following is produced when magnesium (Mg) combusts?A. CO2
B. MgO
C. O2
D. H2O
) determine the theoretical yield and the percent yield if 21.8 g of k2co3 is produced from reacting 27.9 g ko2 with 29.0 l of co2 (at stp). the molar mass of ko2 = 71.10 g/mol and k2co3 = 138.21 g/mol.
Answer : The theoretical yield of [tex]K_2CO_3[/tex] = 27.089 g
The percent yield of [tex]K_2CO_3[/tex] is, 80.47 %
Explanation : Given,
Mass of [tex]KO_2[/tex] = 27.9 g
Volume of [tex]CO_2[/tex] = 29.0 L (At STP)
Molar mass of [tex]KO_2[/tex] = 71.10 g/mole
Molar mass of [tex]CO_2[/tex] = 44 g/mole
Molar mass of [tex]K_2CO_3[/tex] = 138.21 g/mole
First we have to calculate the moles of [tex]CO_2[/tex] and [tex]KO_2[/tex].
At STP,
As, 22.4 L volume of [tex]CO_2[/tex] present in 1 mole of [tex]CO_2[/tex]
So, 29.0 L volume of [tex]CO_2[/tex] present in [tex]\frac{29.0}{22.4}=1.29[/tex] mole of [tex]CO_2[/tex]
[tex]\text{Moles of }KO_2=\frac{\text{Mass of }KO_2}{\text{Molar mass of }KO_2}=\frac{27.9g}{71.10g/mole}=0.392mole[/tex]
Now we have to calculate the limiting and excess reagent.
The balanced chemical reaction is,
[tex]4KO_2+2CO_2\rightarrow 2K_2CO_3+3O_2[/tex]
From the balanced reaction we conclude that
As, 4 moles of [tex]KO_2[/tex] react with 2 mole of [tex]CO_2[/tex]
So, 0.392 moles of [tex]KO_2[/tex] react with [tex]\frac{2}{4}\times 0.392=0.196[/tex] moles of [tex]CO_2[/tex]
From this we conclude that, [tex]CO_2[/tex] is an excess reagent because the given moles are greater than the required moles and [tex]KO_2[/tex] is a limiting reagent and it limits the formation of product.
Now we have to calculate the moles of [tex]K_2CO_3[/tex].
As, 4 moles of [tex]KO_2[/tex] react to give 2 moles of [tex]K_2CO_3[/tex]
So, 0.392 moles of [tex]KO_2[/tex] react to give [tex]\frac{2}{4}\times 0.392=0.196[/tex] moles of [tex]K_2CO_3[/tex]
Now we have to calculate the mass of [tex]K_2CO_3[/tex].
[tex]\text{Mass of }K_2CO_3=\text{Moles of }K_2CO_3\times \text{Molar mass of }K_2CO_3[/tex]
[tex]\text{Mass of }K_2CO_3=(0.196mole)\times (138.21g/mole)=27.089g[/tex]
The theoretical yield of [tex]K_2CO_3[/tex] = 27.089 g
The actual yield of [tex]K_2CO_3[/tex] = 21.8 g
Now we have to calculate the percent yield of [tex]K_2CO_3[/tex]
[tex]\%\text{ yield of }K_2CO_3=\frac{\text{Actual yield of }K_2CO_3}{\text{Theoretical yield of }K_2CO_3}\times 100=\frac{21.8g}{27.089g}\times 100=80.47\%[/tex]
Therefore, the percent yield of [tex]K_2CO_3[/tex] is, 80.47 %
The theoretical yield of K₂CO₃ is 54.17 g and the percent yield is 40.24%.
Percent yield is the percent ratio of actual yield to the theoretical yield. It is calculated to be the experimental yield divided by theoretical yield multiplied by 100%. If the actual and theoretical yield are the same, the percent yield is 100%
In chemistry, yield is a measure of the quantity of moles of a product formed in relation to the reactant consumed, obtained in a chemical reaction, usually expressed as a percentage.
Given,
Mass of K₂O = 27.9g
Molar Mass of K₂O = 71.1 g/mol
Mass of CO₂ = 29.01g
The reaction can be written as -
K₂O + CO₂ = K₂CO₃
Moles of K₂O = 27.9 / 71.1 = 0.392 moles
Moles of CO₂ = 29 / 22.4 = 1.29 moles
Since moles of K₂O is lesser, it is the limiting reagent.
From the reaction, 1 mole of K₂O gives 1 mole of K₂CO₃
so, 0.392 moles of K₂CO₃ is produced.
Theoretical yield of K₂CO₃ = 0.392 × 138.21 = 54.17 g
Actual yield = 21.8 g
Percent yield = (21.8 / 54.17) × 100
= 40.24%
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Write a balanced nuclear equation for the beta decay of thallium-210.
Final answer:
The beta decay of thallium-210 results in the conversion of the thallium nucleus into a lead-210 nucleus, with the emission of a beta particle and an antineutrino.
Explanation:
The beta decay of thallium-210 involves the transformation of a neutron into a proton, with the emission of an electron (beta particle) and an antineutrino. The balanced nuclear equation for this process can be written as follows:
^{210}_{81}Tl →
^{210}_{82}Pb +
^-1_{0}e (or β^-) + ar{ν}_e
Here, thallium-210 (Tl-210) undergoes beta decay to become lead-210 (Pb-210), with the emission of a beta particle (β^-) and an antineutrino (ν_e).
From left to right, identify the hybridization on the carbons in ch3cn.
The first carbon in CH3CN is sp3 hybridized, due to its four single bonds and tetrahedral geometry, while the second carbon is sp hybridized, having a triple bond and a single bond resulting in a linear geometry.
Explanation:To determine the hybridization of the carbon atoms in CH3CN, we must examine the bonding around each carbon. Starting with the CH3 group, the first carbon is bonded to three hydrogen atoms and has a single bond with the second carbon. This suggests an sp3 hybridization, which is typical for carbons with four single bonds and leads to a tetrahedral geometry. Proceeding to the carbon in the CN group, it has a triple bond with nitrogen and a single bond to the first carbon. This configuration means it is sp hybridized, as there are two electron groups around it resulting in a linear geometry.
Therefore, from left to right, the hybridization of the carbons in CH3CN are sp3 and sp.
Why is it important to know what temperature scale is being used in a given situation?
The study of chemistry physics and astronomy are closely related true or false
Answer:
True, they are closely related.
Explanation:
Because they both sometimes are related to the same thing.
The simplest substances on Earth are called ________.
A. compounds
B. elements
C. solutions
D. molecules
a part of the periodic table is shown below. which of the following elements is less reactive then the others?
Explanation:
its the third one down :)
In a future hydrogen-fuel economy, the cheapest source of h2 will certainly be water. it takes 467 kj to produce 1 mol of h atoms from water. what is the frequency, wavelength, and minimum energy of a photon that can free an h atom from water? enter your answers in scientific notation.
The minimum energy of a photon that can produce one hydrogen atom from water is [tex]\boxed{7.755 \times {{10}^{ - 19}}{\text{ J}}}[/tex]
The frequency of the photon is [tex]\boxed{1.17 \times {{10}^{15}}{\text{ }}{{\text{s}}^{ - 1}}}[/tex].
The wavelength of the photon is [tex]\boxed{2.563 \times {{10}^{ - 7}}{\text{ m}}}[/tex].
Further Explanation:
Frequency[tex]\left( \nu \right)[/tex] is defined as number of times n event occurs in unit time. It is generally applied to waves including light, sound, and radio waves. It is denoted by [tex]{\nu }}[/tex] and its SI unit is Hertz (Hz).
Wavelength is the characteristic property of a wave. It is defined as the distance between two successive crests or troughs. A crest is that point where there is maximum displacement of the medium whereas trough is a point that has minimum displacement of the medium. It is represented by [tex]\lambda[/tex] and its SI unit is meter (m).
First, the energy required to produce one hydrogen atom in joule can be calculated as follows:
[tex]E\left({\text{J}}\right)=\frac{{E\left( {{\text{kJ}}}\right)\times\left({\frac{{{{10}^3}{\text{ J}}}}{{{\text{kJ}}}}}\right)}}{{{{\text{N}}_{\text{A}}}}}[/tex] …… (1)
Here, [tex]{{\text{N}}_{\text{A}}}[/tex] is an Avogadro's number and has a value [tex]6.022 \times {10^{23}}{\text{ mo}}{{\text{l}}^{ - 1}}[/tex].
Substitute [tex]467{\text{ kJ/mol}}[/tex] for [tex]E\left( {{\text{kJ}}} \right)[/tex] and [tex]6.022 \times {10^{23}}{\text{ mo}}{{\text{l}}^{ - 1}}[/tex] for [tex]{{\text{N}}_{\text{A}}}[/tex] in equation (1).
[tex]\begin{aligned}E\left( {\text{J}} \right)&=\frac{{\left({467{\text{ kJ/mol}}} \right) \times \left( {\frac{{{{10}^3}{\text{ J}}}}{{{\text{kJ}}}}}\right)}}{{6.022\times {{10}^{23}}{\text{ mo}}{{\text{l}}^{-1}}}}\\&=7.755\times{10^{-19}}{\text{ J}}\\\end{aligned}[/tex]
Thus the energy of a photon that can free one atom of hydrogen is [tex]7.755 \times {10^{ - 19}}{\text{ J}}[/tex].
The expression of frequency and energy is as follows:
[tex]E=hv[/tex] …… (2)
Here, [tex]v[/tex] is a frequency of photon and h is a Plank’s constant and has a value [tex]\left({6.626\times{{10}^{-34}}{\text{ Js}}}\right)[/tex].
Rearrange equation (2) to calculate the frequency of the photon as follows:
[tex]v=\frac{E}{h}[/tex] …… (3)
Substitute [tex]6.626\times{10^{-34}}{\text{ J}}\cdot{\text{s}}[/tex] for h and [tex]7.755 \times {10^{-19}}{\text{ J}}[/tex] for E in equation (3).
[tex]\begin{aligned}v&=\frac{{7.755\times{{10}^{-19}}{\text{ J}}}}{{6.626\times{{10}^{-34}}{\text{ Js}}}}\\&=1.17\times{10^{15}}{\text{}}{{\text{s}}^{-1}}\\\end{aligned}[/tex]
Thus the frequency of photon is [tex]1.17\times{10^{15}}{\text{}}{{\text{s}}^{-1}}[/tex].
The expression to calculate the wavelength from energy of the photon is as follows:
[tex]E = \frac{{h{\text{c}}}}{{\lambda }}}[/tex] …… (4)
Here [tex]{\lambda }}[/tex] is a wavelength of a photon and c is a speed of light.
Rearrange equation (4) to calculate wavelength of the photon as follows:
[tex]{\lambda }}=\frac{{h{\text{c}}}}{E}[/tex] …… (5)
Substitute [tex]6.626 \times {10^{ - 34}}{\text{ J}} \cdot {\text{s}}[/tex] for h, [tex]3.0 \times {10^8}{\text{ m/s}}[/tex] for c and [tex]7.755 \times {10^{ - 19}}{\text{ J}}[/tex] for E in equation (5).
[tex]\begin{aligned}{\lambda}}=\frac{{\left({6.626\times {{10}^{-34}}{\text{ J}}\cdot {\text{s}}} \right)\left( {3.0 \times {{10}^8}{\text{ m/s}}}\right)}}{{\left({7.755\times {{10}^{ - 19}}{\text{ J}}} \right)}}\\=2.563\times {10^{-7}}{\text{m}}\\\end{aligned}[/tex]
Hence wavelength of the photon is equal to [tex]2.563 \times {10^{ - 7}}{\text{ m}}[/tex].
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Answer details:
Grade: Senior School
Subject: Chemistry
Chapter: Structure of atom
Keywords: Hydrogen atom, cheapest source of h2, 467 kj, 1 mol of h atom, frequency wavelength.
Sodium-24 has a half-life of 14.8 hours. how much of a 227.0 mg sodium-24 sample will remain after 3.7 days?
Final answer:
After 3.7 days, approximately 3.54mg of the original 227.0mg Sodium-24 sample will remain when considering its half-life of 14.8 hours. This is calculated by determining the number of half-life periods that occur in 3.7 days and applying the power of this number to half the mass to represent the consistent halving of the sample
Explanation:
The question is about the concept of half-life and how it applies to a sample of Sodium-24. Sodium-24 has a half-life of 14.8 hours, which means every 14.8 hours, half of the Sodium-24 atoms decay. Therefore, to find out how much of a 227.0 mg sample remains after 3.7 days, we need to first convert the days into hours (3.7 days * 24 hours/day = 88.8 hours) and then divide this by the half-life of Sodium-24 (88.8 hours / 14.8 hours/half-life = ~6 half-lives).
Given that half of the material decays each half-life period, we calculate: 227.0 mg * (1/2)^6 = ~3.54 mg. So, approximately 3.54 mg of the original Sodium-24 sample would remain after 3.7 days.
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What is the concentration of an hbr solution if 12.0 ml of the solution is neutralized by 15.0 ml of a 0.25 m koh solution?
The concentration of the HBr solution is approximately 0.3125 M.
Explanation:To find the concentration of the HBr solution, we can use the equation:
M1V1 = M2V2
where M1 is the concentration of the KOH solution (given as 0.25 M), V1 is the volume of the KOH solution (given as 15.0 mL), M2 is the concentration of the HBr solution (what we're trying to find), and V2 is the volume of the HBr solution (given as 12.0 mL).
Plugging in the values:
(0.25 M)(15.0 mL) = M2(12.0 mL)
Simplifying:
3.75 = 12M2
Dividing both sides by 12:
M2 = 3.75/12 ≈ 0.3125 M
Therefore, the concentration of the HBr solution is approximately 0.3125 M.
In the simulation, open the micro mode, then select solutions indicated below from the dropdown above the beaker in the simulation. the beaker will fill up to the 0.50 l mark with the solution at 25 ∘c. arrange the acids in increasing order of acidity. rank from lowest to highest. to rank items as equivalent, overlap th
explanation :
pH values of all :
battery acid pH = 1.0
vomit pH = 2.0
soda pop pH = 2.5
orange juice pH = 3.5
coffee pH = 5.0
milik pH = 6.5
pH value is lesser acidity is more . high pH indicate lesser acidic nature
Final answer:
Explanation of the increasing freezing points of aqueous solutions including acetic acid, NaCl, sucrose, and CaCl₂.
Explanation:
Arrange the aqueous solutions in increasing freezing points:
0.3 m acetic acid
0.2 m NaCl
0.2 m sucrose
0.1 m CaCl₂
Are the statements about hydrogen bonding of the compound below with water true or false? this compound can act as a hydrogen-bond donor. this compound can act as a hydrogen-bond acceptor
Methanol (CH₃OH) can act as both a hydrogen bond donor and acceptor due to its hydrogen atom bonded to electronegative oxygen and the oxygen's two lone pairs of electrons. This enables methanol to form a network of hydrogen bonds with water, affecting its physical properties.
The compound that can act as both a hydrogen bond donor and a hydrogen bond acceptor is methanol (CH₃OH). It contains a hydrogen atom attached to oxygen (making it a hydrogen bond donor) and two lone pairs of electrons on the oxygen (making it a hydrogen bond acceptor). A substance, like methanol, that can both donate a hydrogen atom and accept a hydrogen bond due to these features can participate in hydrogen bonding with water.
To assess whether a compound can act as a hydrogen bond donor or acceptor, one should look for a hydrogen atom bonded to a highly electronegative atom like oxygen, nitrogen, or fluorine; this structure facilitates hydrogen bond donation. For a compound to act as an acceptor, one should identify the presence of lone pairs of electrons on a highly electronegative atom, which can attract the hydrogen atom from another molecule.
Methanol's ability to act in both capacities allows it to form a network of hydrogen bonds with water molecules, thus affecting properties such as the boiling point and solubility. When drawing the hydrogen-bonded structure, we would show lines or dotted lines between the hydrogen of one methanol molecule and the oxygen of another methanol molecule or of a water molecule to represent the hydrogen bonds.
Atomic weight of gold is 197.2 ami
Calculate no of gram atoms in 7.5g of gold
To find the number of gram atoms in 7.5g of gold, divide the mass by the molar mass of gold, which gives approximately 0.03807 moles of gram atoms.
The student was asked to calculate the number of gram atoms in 7.5g of gold where the atomic weight of gold is given as 197.2 amu (atomic mass unit). We use the concept of molar mass to answer this question. The molar mass of gold (Au) is about 197.0g/mol, and we know that one mole of any substance contains Avogadro's number of atoms, which is 6.022 x 1023 atoms/mol.
To find the number of moles (or gram atoms) in 7.5g of gold, we use the formula:
Number of moles = Mass (g) / Molar mass (g/mol)
Substituting the values, we get:
Number of moles = 7.5g / 197.0g/mol ≈ 0.03807 mol
Therefore, there are about 0.03807-gram atoms in 7.5g of gold.
Write the electron configuration for ni2+. use the buttons at the top of the tool to add orbitals in order of orbital filling, starting at the bottom with the lowest-energy orbitals. click within an orbital to add electrons. g.com
The electron configuration for Ni²⁺ is [Ar] 3d⁸.
Nickel (Ni) has an atomic number of 28, which means that it has 28 protons in its nucleus. It also has 28 electrons, which are arranged in shells around the nucleus.
The electron configuration for a neutral nickel atom is:
[Ar] 3d⁸ 4s²
The argon (Ar) core is filled with 18 electrons, and the remaining 10 electrons are arranged in the 3d and 4s orbitals.
When nickel loses two electrons to form Ni²⁺, the two electrons that are lost are the two 4s electrons. This leaves the 8 3d electrons behind, which gives Ni²⁺ the electron configuration shown above.
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The half life of carbon is 5700 years. if you started with 100g of carbon 14 how much would remain after 4 half lives
When 0.400 mole of potassium reacts with excess water at standard temperature and pressure as shown in the equation above, the volume of hydrogen gas produced is: 2 k (s) 2 h2o (l) → 2 k (aq) 2 oh- (aq) h2 (g)?
using the chart, translate the mRNA into amino acids. (amino acids abbreviations plz)
What mass of hcl gas must be added to 1.00 l of a buffer solution that contains [aceticacid]=2.0m and [acetate]=1.0m in order to produce a solution with ph = 4.11?
To achieve a pH of 4.11 in the given buffer solution, approximately 15.71 grams of HCl gas need to be added.
To determine the mass of HCl gas needed to achieve the desired pH in the buffer solution, we can use the Henderson-Hasselbalch equation:
pH = pKₐ + log([A⁻] / [HA])
For acetic acid (CH₃COOH), the pKₐ is approximately 4.76. Given: [HA] = 2.0 M (acetic acid), [A-] = 1.0 M (acetate), and the target pH is 4.11, we can set up the equation:
4.11 = 4.76 + log([A⁻] / [HA])
Rearranging to solve for the ratio [A⁻]/[HA]:
4.11 - 4.76 = log([A⁻] / [HA])
-0.65 = log([A⁻] / [HA])
[A⁻] / [HA] = [tex]10^-^0^.^6^3[/tex] ≈ 0.234
Next, let x be the number of moles of HCl gas added. HCl will convert acetate (A⁻) to acetic acid (HA):
(1.0 - X) / (2.0 + X) = 0.234
Solving for X: multiply both sides by (2.0 + X):
1.0 - x = 0.234 x (2.0 + X)
1.0 - x = 0.468 + 0.234X
1.0 - 0.448 = 0.224X + X
0.532 = 1.234X
X ≈ 0.431
Thus, moles of HCl needed are approximately 0.431 moles. Using the molar mass of HCl (36.46 g/mol), we can calculate the mass:
Mass of HCl = 0.431 mol x 36.46 g/mol ≈ 15.71g
what is the most susceptible to damage from ionizing radiation. sorft tissue, paper, wood, lead
Ionizing radiation is most damaging to soft tissue among the materials listed (soft tissue, paper, wood, lead) due to its ability to break chemical bonds and cause cell malfunctions. However, the impact largely depends on the type of radiation and the characteristics of the material.
Explanation:The effects of ionizing radiation on materials largely depend on the type of radiation and the characteristics of the material. Ionizing radiation is harmful as it can ionize molecules or break chemical bonds, causing malfunctions in cell processes. This can lead to somatic or genetic damage, particularly in rapidly reproducing cells.
In terms of the materials listed, soft tissue is the most susceptible to damage from ionizing radiation. Materials like paper, wood, and lead have different degrees of resistance to ionizing radiation. Paper and wood can block alpha and beta particles, low-energy forms of ionizing radiation, while metal or lead can stop gamma radiation, a high-energy form of ionizing radiation, more effectively.
However, it's crucial to note that ionizing radiation has its greatest effect on cells that rapidly reproduce. Therefore, in living organisms, areas with rapidly dividing cells, such as the skin or the lining of the stomach or intestines, are especially susceptible to damage from ionizing radiation.
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Some chemical reactions can proceed in just one direction . True or False ?
Find the empirical and molecular formula for a molar mass of 60.10g/mol; 39.97% carbon 13.41% hydrogen: 46.62% nitrogen
How much heat is required to raise the temperature of 10.35g of CCl4 from 32.1°c to 56.4°c
A galvanic (voltaic) cell contains a copper cathode immersed in a copper(ii) chloride solution and a nickel anode immersed in a nickel(ii) chloride solution. the two solutions are connected with a salt bridge. write the balanced equation for the galvanic cell. phases are optional.
The overall reaction for the galvanic cell has been [tex]\rm Cu^2^+\;+\;Ni\;\rightarrow\;Ni^2^+\;+\;Cu[/tex].
The galvanic cell has been given as the electrochemical cell that converts chemical energy of the reaction into electrical energy.
Balanced equation for the Galvanic cellThe galvanic cell has anode as the oxidizing electrode, whee the loss of electrons takes place, and cathode as the reducing electrode where the gain of electrons takes place.
The cathodic reaction in the cell has been:
[tex]\rm Cu^2^+\;\rightarrow\;Cu\;(s)[/tex]
The anodic reaction in the cell has been:
[tex]\rm Ni\;(s)\;\rightarrow\;Ni^2^+[/tex]
The overall reaction for the galvanic cell has been:
[tex]\rm Cu^2^+\;+\;Ni\;\rightarrow\;Ni^2^+\;+\;Cu[/tex]
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What is the percent of MgSO4 in magnesium sulfate heptahydrate
Phosphorus-32 has a half-life of 14.3 days. how many grams remain from a 10.0 gram sample after 30.0 days?
Answer: 2.23 grams
Explanation:
Radioactive decay follows first order kinetics.
Half-life of Phosphorus-32 = 14.3 days
[tex]\lambda =\frac{0.693}{t_{\frac{1}{2}}}=\frac{0.693}{14.3}= 0.05days^{-1}[/tex]
[tex]N=N_o\times e^{-\lambda t}[/tex]
N = amount left after time t= ?
[tex]N_0[/tex] = initial amount = 10.0 g
[tex]\lambda[/tex] = rate constant= [tex]0.05days^{-1}[/tex]
t= time = 30 days
[tex]N=10\times e^{- 0.05 days^{-1}\times 30days}[/tex]
[tex]N=2.23g[/tex]