Alka-Seltzer contains three main components: sodium bicarbonate (NaHCO3), citric acid (C6H8O7), and acetylsalicylic acid (C9H8O4). .
According to the manufacturer, Alka-Seltzer contains about 325 mg of sodium bicarbonate, 1000 mg of citric acid, and 325 mg of acetylsalicylic acid per tablet. Assuming that 1 gram of Alka-Seltzer is equivalent to one tablet, we can calculate the approximate percentage of each component as follows:
- Sodium bicarbonate: (325 mg / 1000 mg) x 100% = 32.5%
- Citric acid: (1000 mg / 1000 mg) x 100% = 100%
- Acetylsalicylic acid: (325 mg / 1000 mg) x 100% = 32.5%
Using these percentages, we can make an educated guess about the limiting reactant. Since there is an equal amount of sodium bicarbonate and acetylsalicylic acid in Alka-Seltzer (both at 32.5%), and since citric acid is present in a larger amount (at 100%), it is possible that citric acid could be the limiting reactant.
However, without more precise information about the percentages of each component in Alka-Seltzer, we cannot determine the limiting reactant with certainty.
It's worth noting that even if we did know the exact percentages of each component in Alka-Seltzer, there could be other factors that affect the limiting reactant, such as the temperature and pressure of the reaction. Additionally, the reaction may not proceed according to the balanced equation in a real-world scenario.
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if we say 2p6, the 2 corresponds to:group of answer choicesthe magnetic quantum numberthe number of orbitals that exist of that typethe energy levelthe number of electrons in those orbitals
If we say 2p6, the 2 corresponds to the energy level, and the 6 corresponds to the number of electrons in those orbitals.
In the electron configuration notation, the term "2p6" describes the arrangement of electrons in an atom's valence shell. The "2" in this term refers to the principal quantum number, which indicates the energy level of the valence shell. The "p" refers to the type of orbital, specifically the "p" orbital. The "6" indicates the total number of electrons present in that set of "p" orbitals. Therefore, the term "2p6" tells us that the valence shell of the atom has two energy levels and contains six electrons in the "p" orbitals. Overall, electron configuration notation helps us understand the electronic structure of atoms and their chemical properties.
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What is nitrobenzne?
Nitrobenzene is a chemical compound with the molecular formula C6H5NO2. It is a pale yellow oily liquid with a sweet almond-like odor.
Nitrobenzene is widely used in the production of aniline, which is used in the manufacture of dyes, pharmaceuticals, and rubber chemicals. It is also used as a solvent for cellulose esters, resins, and oils, as well as a flavoring agent in the food industry. Despite its many uses, nitrobenzene is toxic and can cause harm to humans and the environment. It is classified as a Category 2 carcinogen and can cause damage to the liver, kidney, and central nervous system. Exposure to nitrobenzene can occur through inhalation, ingestion, or contact with the skin. Therefore, it is important to handle nitrobenzene with care and follow proper safety procedures when working with this compound. In summary, nitrobenzene is a widely used chemical compound with many industrial applications. However, due to its toxic nature, precautions must be taken when handling it to ensure the safety of individuals and the environment.
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What is the temperature in Celsius of 308 K?
A. 35°C
B. -35°C
C. 581 K
D. -581°C
The temperature in Celsius of 308 K is 35°C. Option A is correct.
Temperature in Celsius (°C) is a unit of measurement used to express the amount of thermal energy or heat present in a substance or environment, relative to the freezing and boiling points of water.
In the Celsius scale, the freezing point of water is defined as 0°C, and the boiling point of water is defined as 100°C, at standard atmospheric pressure.
To convert temperature from Kelvin (K) to Celsius (°C), you subtract 273.15 from the given temperature in Kelvin.
308 K - 273.15 = 34.85°C (rounded to two decimal places)
Since the temperature 308 K is slightly less than 35°C.
Hence, A. is the correct option.
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When do you specify charge on compund names?
In chemistry, a compound is formed when two or more different elements combine chemically. Compounds are named based on a set of rules called nomenclature, which involves specifying the types and numbers of atoms present in the compound.
When naming a compound, it is important to specify the charge of the compound if it is an ion. An ion is an atom or molecule that has gained or lost one or more electrons, resulting in a net electrical charge. If a compound is an ion, then its charge must be specified in its name. For example, sodium chloride (NaCl) is a neutral compound, but if it loses an electron, it becomes a positively charged ion, known as a cation. The charge on this ion is indicated by writing the symbol of the element, followed by the charge in parentheses, such as Na+. Similarly, if a compound gains an electron, it becomes a negatively charged ion, known as an anion. The charge on this ion is indicated by writing the symbol of the element, followed by the charge in parentheses, such as Cl-. In general, the charge on an ion is indicated by a superscript after the element symbol. In summary, the charge on a compound must be specified in its name if it is an ion. The charge is indicated by a superscript after the element symbol, and this is an important part of the compound's nomenclature.
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in 75 g of a 12% by mass solution of barium chloride, (a)how many grams of solute are present? 9 g bacl2 (b) how many grams of solvent are present? 66 g h2o 2. calculate the molarity of the solution made by mixing 175 ml of 3.0 m hcl with 250 ml of water 1.2 m 3. when 80.5 ml of 0.642 m ba(no3)2 are mixed with 44.5 ml of 0.743 m koh, a precipitate of ba(oh)2 forms. how many grams of ba(oh)2 do you expect? 2.84 g ba(oh)2 4. you need to make a large quantity of a 5.0 % solution of hcl but only have 25.0 ml hcl. what volume of 5.0 % solution can be made from this volume of hcl? 500 ml (assume 5% solution is by volume) 5. concentrated nitric acid is 16 m. how much water must be added to a 175 ml sample of concentrated acid to make a 0.15 m nitric acid solution? 18.49 l h2o (remember to subtract 175 ml (v1) from v2 to get volume of water added) 6. a hospital glucose, c6h12o6, solution is analyzed to confirm its concentration. a 10.0 ml sample with a mass of 10.483 g is evaporated to dryness. if the solid glucose residue has a mass of 0.524 g, find the following: density
The density of the glucose solution is 0.951 g/mL.
To find the density of the glucose solution, we need to first calculate the mass of the solution.
We know that the sample of the solution had a mass of 10.483 g, and we can assume that the density of the solution is close to that of water (1 g/mL). Therefore, the volume of the sample is:
Volume = Mass / Density = 10.483 g / 1 g/mL = 10.483 mL
Now, we can use the formula for density:
Density = Mass / Volume
The mass of the solution can be found by subtracting the mass of the glucose residue from the initial mass of the sample:
Mass of solution = 10.483 g - 0.524 g = 9.959 g
Substituting these values, we get:
Density = 9.959 g / 10.483 mL = 0.951 g/mL
Therefore, the density of the glucose solution is 0.951 g/mL.
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NOTE- The question seems to be incomplete, The complete question isn't available on the search engine.
What two categories of materials require special engineering for chemical hoods?
Radioactive substances and perchloric acid
Radioactive substances and blood-born pathogens
Toxic gases and radioactive gases
Toxic gases and blood-born pathogens
Toxic gases and radioactive gases are the two categories of materials that require special engineering for chemical hoods.
The design and construction of the hoods must take into consideration the potential hazards of these materials to ensure the safety of workers and prevent any release of harmful substances into the surrounding environment. Chemical hoods are a critical component of laboratory safety and must be carefully designed and maintained to protect workers and the surrounding area from exposure to hazardous materials. Special engineering is needed to ensure that the hood is properly vented and that any radiation that is emitted is contained and not released into the environment.
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The solubility product Ksp for HgS is 3. 0x10-53 Calculate the solubility of HgS in water in miles per liter and transform answer into number of mercuric ions per liter According to this calculation what volume of water in equilibrium with solid HgS contains a single Hg2+ ion?
The volume of water in equilibrium with solid HgS containing a single Hg²+ ions is 1.105 ×[tex]10^(-24)[/tex].
The solubility product expression for HgS can be written as:
[tex]\mathrm{K_{sp} = [Hg^{2+}][S^{2-}]}[/tex]
Since HgS is a sparingly soluble salt, we can assume that the concentration of Hg²+ ionss in the solution is negligible compared to the initial concentration of HgS. Therefore, we can write:
[Hg²] ≈ 0
Substituting this into the solubility product expression, we get:
[tex]\mathrm{[Hg^{2+}] \approx 0}[/tex] [tex]\mathrm{K_{sp} = [Hg^{2+}][S^{2-}] \approx 0 \times [S^{2-}] = 0}[/tex]
This implies that the concentration of S2- ions in solution is also very low, and thus, the solubility of HgS is also very low. We can calculate the solubility (S) of HgS in water as follows:
[tex]\mathrm{K_{sp} = [Hg^{2+}][S^{2-}] = S^2}[/tex]
[tex]\mathrm{S = \sqrt{K_{sp}} = \sqrt{3.0 \times 10^{-53}} = 5.5 \times 10^{-27}\ M}[/tex]
To convert this to miles per liter, we can use the conversion factor:
1 mile = 1.60934 km
1 liter = 1000 [tex]cm^3[/tex]
1 cm = [tex]10^(-2) m[/tex]
1 mile per liter = [tex](1/1.60934)^3[/tex]km per liter = [tex]0.160934^3[/tex] km per liter = 0.00417 km per liter
Therefore, the solubility of HgS in water is:
S = 5.5 × [tex]10^(-27)[/tex] M = 5.5 × 10^(-27) mol/L
= 5.5 × [tex]10^(-27)[/tex] × 200.59 g/mole (molar mass of HgS)
= 1.102 × [tex]10^(-24)[/tex] g/L
= 1.102 × [tex]10^(-24)[/tex] / 1.66054 × 10^(-24) miles per liter
= 0.663 miles per liter (approximately)
To calculate the volume of water in equilibrium with solid HgS containing a single Hg²+ ions, we can use the solubility and the stoichiometry of the reaction:
[tex]\mathrm{HgS(s) \rightleftharpoons Hg^{2+}(aq) + S^{2-}(aq)}[/tex]
For every HgS molecule that dissolves, oneHg²+ ions is released. Therefore, the concentration of Hg²+ ions in solution is equal to the solubility of HgS.
The volume of water required to dissolve one HgS molecule and release a single Hg2+ ion can be calculated as follows:
1 molecule of HgS = 200.59 g/mole
1 mole of HgS = (1/200.59) mole/g = 4.987 × [tex]10^(-3)[/tex] mole
1 L of solution = 1000 [tex]cm^3[/tex]
[tex]1 cm^3[/tex]of solution = 1/1000 L
5.5 ×[tex]10^(-27)[/tex] mol/L = 5.5 ×[tex]10^(-27)[/tex] mol/cm^3
Volume of water containing a single Hg²+ ions = (5.5 × [tex]10^(-27)[/tex] [tex]mol/cm^3)[/tex] / (4.987 ×[tex]10^(-3)[/tex] mol/L) × (1/1000) L/[tex]cm^3[/tex]
= 1.105 × [tex]10^(-24) L[/tex]
Therefore, the volume of water in equilibrium with solid HgS containing a single Hg2+ ion is 1.105 × [tex]10^(-24) .[/tex]
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PART OF WRITTEN EXAMINATION:
Cations:
A) are positively charged ions
B) have more electrons than protons
C) have more electrons than neutrons
D) are negatively charged ions
The correct answer is A) cations are positively charged ions. This is because cations have lost electrons, leaving them with a net positive charge.
It is important to note that protons are positively charged particles found in the nucleus of an atom and play a key role in determining the charge of an ion. So in the case of cations, they have fewer electrons than protons, which results in a positive charge.
Option B is incorrect as cations actually have fewer electrons than protons, not more. Option C is incorrect as neutrons do not affect the charge of an ion. Option D is also incorrect as negatively charged ions are called anions, not cations.
A) are positively charged ions.
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How many moles of aluminum will be used when reacted with 1.35 moles of oxygen based on this chemical reaction? __Al + ___ O2 → 2Al2O3
The stoichiometric concept is used here to determine the moles of Aluminium used. Stoichiometry is an important concept in chemistry which helps us to use balanced chemical equation to calculate the amount of reactants and products.
Chemical stoichiometry refers to the quantitative study of the reactants and products involved in a chemical reaction. It help us to determine how much substance is needed or is present.
The balanced equation is:
4Al + 3O₂ → 2Al₂O₃
1.35 mol O₂ × 4 mol Al / 3 mol O₂ = 1.8 mol Al
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he pH of a 0.11 M solution of chloroacetic acid (CH2ClCOOH) is measured to be 1.91. Use this information to determine a value of Ka for chloroacetic acid.CH2ClCOOH(aq)+H2O(l)⇌CH2ClCOO−(aq)+H3O+(aq)
The Ka of chloroacetic acid is equal to 2.1 x 10⁻². The Ka for chloroacetic acid can be determined from the measured pH of a 0.11 M solution of chloroacetic acid.
To determine the value of Ka for chloroacetic acid (CH2ClCOOH), we can use the pH of the solution and the initial concentration of the acid. The equation for the dissociation of chloroacetic acid is:
CH2ClCOOH(aq) + H₂O(l) ⇌ CH2ClCOO-(aq) + H₃O+(aq)
At equilibrium, we can assume that x is the concentration of the hydronium ion (H₃O+) and the acetate ion (CH2ClCOO-), which will be equal since the acid is monoprotic. Therefore, the concentration of CH2ClCOO- will also be x. The initial concentration of CH2ClCOOH is 0.11 M.
The equilibrium expression for Ka is given by:
Ka = [CH2ClCOO-][H₃O+]/[CH2ClCOOH]
Substituting the equilibrium concentrations, we have:
Ka = (x)(x)/(0.11 - x)
Given that the pH of the solution is 1.91, we can calculate the concentration of H₃O+ using the relationship:
pH = -log[H₃O+]
1.91 = -log[H₃O+]
[H₃O+] = 10^(-pH)
[H₃O+] = 10^(-1.91)
[H³O+] ≈ 7.94 × 10⁻² M
Since the concentration of H3O+ is equal to x, we can substitute this value into the equilibrium expression:
Ka = (7.94 × 10⁻²)(7.94 × 10⁻²)/(0.11 - 7.94 × 10⁻²)
The Ka of chloroacetic acid is equal to 2.1 x 10⁻².
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a spark has been passed through a mixture of 1,00g H2 and O2 and water has been formed , what are the masses of substances
The reaction consumes 4.032 g of H₂ and 31.998 g of O₂.
When a spark is passed through a mixture of 1.00 g of H₂ and O₂, water is formed. The chemical equation for the reaction is:
2H₂ + O₂ → 2H₂O
According to the stoichiometry of the equation, 2 moles of H₂ react with 1 mole of O₂ to produce 2 moles of H₂O. The molar mass of H₂O is 18.015 g/mol.
1 mole of H₂ has a mass of 2.016 g, so 1.00 g of H₂ is equivalent to 0.496 mol.
1 mole of O₂ has a mass of 31.998 g, so the amount of O₂ present can be calculated as:
0.496 mol H₂ x (1 mol O₂ / 2 mol H₂) = 0.248 mol O₂
So, the total mass of H₂O formed can be calculated as:
2 mol H₂O x 18.015 g/mol = 36.03 g
This means that 36.03 g of water is formed in the reaction. The masses of H₂ and O₂ consumed can be calculated using their respective stoichiometric coefficients:
2 mol H₂ x 2.016 g/mol = 4.032 g H₂
1 mol O₂ x 31.998 g/mol = 31.998 g O₂
As a result, the reaction uses 4.032 g of H₂ and 31.998 g of O₂.
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The ph of a 0. 15-m solution of hso4−hso4− is 1. 43. Determine ka for hso4−hso4− from these data
The pH of a solution is related to the concentration of H+ ions in the solution by the following equation:
pH = -log[H+]
where [H+] is the concentration of H+ ions in moles per liter (M).
For the acid H2SO4, the dissociation can be written as follows:
H2SO4 ⇌ H+ + HSO4-
The acid dissociation constant, Ka, is defined as:
Ka = [H+][HSO4-]/[H2SO4]
Rearranging this equation gives:
[H+][HSO4-] = Ka[H2SO4]
Since the solution contains HSO4- ions, we can assume that all of the H2SO4 has dissociated, and therefore [H2SO4] = 0.15 M. We can also calculate the concentration of H+ ions using the pH:
pH = -log[H+]
10^(-pH) = [H+]
10^(-1.43) = [H+]
[H+] = 3.56 × 10^(-2) M
Substituting these values into the equation for Ka gives:
(3.56 × 10^(-2))(x) = Ka(0.15)
where x is the concentration of HSO4- ions. Solving for Ka:
Ka = (3.56 × 10^(-2))(0.15)/x
Ka = 5.34 × 10^(-3)/x
Therefore, the value of Ka depends on the concentration of HSO4- ions, which was not given in the problem. Without additional information, we cannot calculate the value of Ka.
how many moles of copper (ll) chlorate contain 1.45x10^21
The molar mass of copper (II) chlorate can be used to calculate how many moles of copper (II) chlorate are present in 1.45x1021. Copper (II) chlorate has a molar mass of 222.07 g/mol.
By dividing the mass of copper (II) chlorate by its molar mass, it is possible to determine how many moles of copper (II) chlorate are contained in 1.45x1021.
Accordingly, there are 6.57x1018 moles of copper (II) chlorate in 1.45x1021, which is the amount of copper (II) chlorate.
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ethers can be formed between alcohols by _____ reactions. dehydration hydrolysis hydration oxidation
Ethers can be formed between alcohols by dehydration reactions. In a dehydration reaction, two alcohol molecules react together, resulting in the formation of an ether molecule and the release of a water molecule.
Let us discuss more on dehydration reactions in detail.
1. Two alcohol molecules come in close proximity.
2. A proton (H⁺) from one alcohol molecule is transferred to the oxygen of the other alcohol molecule.
3. The oxygen with the extra proton forms a water molecule (H₂O), leaving behind a carbocation (a carbon with a positive charge).
4. The oxygen from the second alcohol molecule forms a bond with the carbocation, creating an ether molecule.
5. The water molecule is released as a byproduct.
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What further steps are taking in isolating the benzoic acid?
After the benzoic acid has been formed, it can be further isolated through a variety of methods.
One common method is to perform a recrystallization process, which involves dissolving the crude benzoic acid in a solvent such as hot water and then allowing the solution to cool slowly which allows the benzoic acid to form crystals, which can be filtered and dried to yield a pure product. Other methods of isolation may include extraction with organic solvents or chromatography techniques. Overall, the goal of isolating the benzoic acid is to obtain a highly purified product that can be used for further study or applications. The gas condenses and forms a solid, which is then collected in a separate container.
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the concentration of co2 of 420 ppbv yields an equilibrium ph of 5.63 in rainwater (see slide 13 from chapter 11). what is the expected ph of rainwater that is in equilibrium with so2 from a polluted environment with a concentration of 100 ppbv so2? at 25oc, kh so2
We need to use the equilibrium equation for SO2 in water:
SO2 (g) + H2O (l) ⇌ H+ (aq) + HSO3- (aq)
The equilibrium constant (Kh) for this reaction at 25°C is 1.55 x 10^-2 M/atm. We can use this equation to calculate the expected pH of rainwater in equilibrium with SO2:
Kh = [H+][HSO3-]/[SO2]
We can assume that the initial concentration of SO2 is 100 ppbv, which is equivalent to 0.1 parts per million (ppm) or 0.0001 atm. Let x be the concentration of H+ and HSO3- ions in equilibrium. Then:
1.55 x 10^-2 = x^2 / (0.0001 - x)
Solving for x, we get:
x = 4.4 x 10^-4 M
The pH of this solution can be calculated using the equation:
pH = -log[H+]
pH = -log(4.4 x 10^-4)
pH = 3.36
Therefore, the expected pH of rainwater in equilibrium with 100 ppbv of SO2 is 3.36. This is significantly lower than the pH of rainwater in equilibrium with CO2, which was 5.63. This indicates that SO2 is a much stronger acid than CO2, and can have a more significant impact on the acidity of rainwater in polluted environments.
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Calculate the pH of a solution that is 1. 10×10−3M in HCl and 1. 10×10−2M in HClO2.
Express your answer using three decimal places.
My answer of pH = 2. 175 was incorrect, please help
Therefore, the pH of the solution is 2.668, rounded to three decimal places.
The pH of the solution, we need to find the concentration of H+ ions in the solution, which is determined by the dissociation of HCl and [tex]HClO_2[/tex] in water.
HCl dissociates completely in water to form H+ and Cl- ions:
HCl → H+ + Cl-
So the concentration of H+ ions in the solution due to the HCl is simply equal to the concentration of HCl:
[H+] = 1.10× [tex]10^{-2[/tex]
On the other hand, [tex]HClO_2[/tex] is a weak acid, which only partially dissociates in water according to the equation:
[tex]HClO_2[/tex] +[tex]H_2O == H_3O+ + ClO_2^{-}[/tex]
The dissociation constant (Ka) for this reaction is 1.1×[tex]10^{-2[/tex] .
Using the expression for the Ka of a weak acid, we can write:
[tex]K_a = [H_3O+][ClO_2^{-}][/tex]/[ [tex]HClO_2[/tex]]
Assuming that the dissociation of [tex]HClO_2[/tex] is small compared to its initial concentration, we can approximate [ [tex]HClO_2[/tex]] as its initial concentration, and simplify the expression to:
[tex]K_a = [H_3O+][ClO_2^{-}][/tex] / (1.10× ×[tex]10^{-2[/tex] )
Rearranging and solving for [[tex]H_3O[/tex]], we get:
{[tex]H_3O^{+}[/tex]] = √(Ka x [ [tex]HClO_2[/tex]])
{[tex]H_3O^{+}[/tex]] = √(1.1 ×[tex]10^{-2[/tex] M x 1.10×[tex]10^{-2[/tex] M)
{[tex]H_3O^{+}[/tex]] = 1.05×[tex]10^{-3[/tex] M
Now, we can find the total concentration of H+ ions in the solution by adding the concentration due to HCl to the concentration due to the dissociation of [tex]HClO_2[/tex]:
[H+] = [HCl] + {[tex]H_3O^{+}[/tex]]
[H+] = 1.10×[tex]10^{-3[/tex] M + 1.05×[tex]10^{-3[/tex] M
[H+] = 2.15×[tex]10^{-3[/tex] M
Finally, we can calculate the pH of the solution using the formula:
pH = -log[H+]
pH = -log(2.15×[tex]10^{-3[/tex])
pH = 2.668
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Which organelle acts like the control center of the cell and contains DNA?
Cell membrane
Nucleus
Ribosome
Vesicle
Solutions: Concentration- Molarity & ppm worksheet
Molarity is the number of moles of solute per liter of solution, while ppm is the mass of solute per million parts of the solution.
Fixation is a proportion of how much solute disintegrated in a dissolvable. Two familiar approaches to communicating focus are molarity and parts per million (ppm).
Molarity is characterized as the quantity of moles of solute broke up in one liter of arrangement. It is addressed by the image M and is determined as follows:
M = moles of solute/volume of arrangement (in liters)
For instance, on the off chance that 0.5 moles of NaCl is disintegrated in 1.0 L of water, the molarity of the arrangement would be:
M = 0.5 mol/1.0 L = 0.5 M
Parts per million (ppm) is a unit of fixation that communicates the proportion of the mass of solute to the mass of the arrangement, duplicated by 1,000,000. It is addressed by the image ppm and is determined as follows:
ppm = (mass of solute/mass of arrangement) x [tex]10^6[/tex]
For instance, on the off chance that 0.1 g of lead is disintegrated in 1.0 L of water, the ppm of lead in the arrangement would be:
ppm = (0.1 g/1000 g) x [tex]10^6[/tex] = 100 ppm
Molarity and ppm are both valuable approaches to communicating focus and are utilized in different fields, including science, science, and natural science. It is vital to comprehend how to ascertain and switch between these units of focus over completely to precisely plan and examine arrangements in the research facility.
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The complete question is:
SOLUTION CONCENTRATION WORKSHEET 1) If you dissolve 8.56 grams of sodium chloride in 25.09 grams of water, calculate the percent (m/m), of sodium chloride. [25.4%) 2) Calculate the molarity of a solution that contains 18.9 grams of sodium hydroxide in 3.67 L of solution. [O. 13mol/L) 3) How many moles of potassium hydroxide are in 4.82 mL of a 0.050 M solution of potassium hydroxide? [0.000241 mol) 4) If 35 g of copper (II) chloride is placed in 140 mL of water, what will be the percent (m/v) of the solution? (25%) 5) The (m/m)% of silver in sterling silver alloys is 92.5%. What mass of pure silver is found in a ring that has a mass of 6.45 g? [5.97g] 6) Health Canada's guideline for the maximum mercury content in commercial fish is 0.5 ppm. When a 1.6 kg salmon was tested, it was found to contain 0.6 mg of mercury. Would this salmon be safe to eat? [0.4ppm;salmon is safe to eat] 7) A saline solution contains 0.90 g of sodium chloride, dissolved in 100 mL of solution. What is the molar concentration of the solution? [0.15 mol/L) 8) Calculate the mass of solute needed to make 250 mL of a 0.50 M solution of NH,CI [6.79] 8) Calculate the mass of solute needed to make 250 mL of a 0.50 M solution of NH,CI [6.79] 9) A solution is made by mixing 50.0mL of ethanol with 50.0mL of water. Determine the percent by mass (m/m) of ethanol in this solution. The densities of ethanol and water are 0.789g/mL and 1.00g/mL respectively [44.1% m/m ethanol] 10) Calculate the molarity of a solution containing 0.750mol of HCI in 335mL of solution. [2.24 mol HCI/L) 11) Calculate the molarity of a solution that contains 13.5g of sodium sulphate in 850mL of solution. [O .112M Na So.] 12) A laboratory experiment calls for 0.300M KOH solution. Calculate the number of moles of KOH that would be in 150mL of the solution [0.0450 mol KOH] 13) Calculate the number of grams of solute in 150mL of 0.30M NaOH. [1.8gNaOH) 14) How many liters of 0.10M aluminum chloride will contain 0.45 mol of chloride ion? [1.5L] 15) If you had a 1.25M solution of hydrochloric acid, how much of it would you have to use to make 1.5L of a 0.25M solution? [300mL].
1d. draw a specific example (reactant, reagent and product) of the preparation of a lithium acetylide.
Lithium acetylide is an organic compound that is commonly used as a strong base in organic synthesis. It is prepared by the reaction of acetylene with lithium metal in an inert atmosphere. The reaction is exothermic and requires careful handling.
A specific example of the preparation of lithium acetylide can be illustrated by the reaction between acetylene and lithium in a dry tetrahydrofuran (THF) solvent. The reaction can be written as follows:
C₂H₂ + 2Li → Li₂C₂ + H₂
In this reaction, acetylene acts as the reactant, while lithium metal acts as the reagent. The product of the reaction is lithium acetylide, which is represented by the chemical formula Li₂C₂.
The reaction is usually carried out in an inert atmosphere, such as nitrogen or argon gas, to prevent the reaction of lithium with water or air. The solvent, THF, is used to dissolve the lithium acetylide product and to prevent the formation of side products.
The preparation of lithium acetylide is an important step in organic synthesis, as it can be used as a strong base for various reactions, such as alkylations, acylations, and reductions. The reactivity of lithium acetylide makes it a useful tool for organic chemists.
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The BrO3- ion is named bromate. What is the name of the oxoacid with the formula HBrO3?
The [tex]BrO_3^-[/tex] ion is named bromate, which is an anion derived from the oxoacid [tex]HBrO_3[/tex]. The name of the oxoacid [tex]HBrO_3[/tex] is bromic acid.
Here's the breakdown of the terms:
- Ion: An atom or molecule with a net electric charge due to the loss or gain of one or more electrons.
- Bromate: The [tex]BrO_3^-[/tex] ion, an anion containing bromine and oxygen.
- Oxoacid: An acid containing oxygen, along with another element and hydrogen.
The hydrogen atom is bonded to one of the oxygen atoms via a single covalent bond. This makes the bromic acid a member of the oxoacid family, which consists of acids that contain oxygen and hydrogen atoms.
So,[tex]HBrO_3[/tex] is an oxoacid with the bromate ion ([tex]BrO_3^-[/tex]) and hydrogen (H⁺), and its name is bromic acid.
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Given that the Ksp value for MgSO3 is 5. 5×10−21, if the concentration of Mg2+ in solution is 8. 9×10−11 M, the concentration of SO2−3 must exceed _____ to generate a precipitate
The Ksp value for MgSO₃ is 5.5×10−21. The concentration of Mg²⁺ in solution is 8.9×10−11 M. To generate a precipitate, the concentration of SO₂⁻³ must exceed 6.2×10−11 M.
Ksp refers to the solubility product constant that provides equilibrium constant for the dissolution of a particular solid substance into an aqueous solution. It projects the level at which a solute dissolves in solution. The greater the Ksp value of a substance.
It places a mathematical relationship that states how the concentrations of the products differentiate with the concentration of the reactants. Furthermore, subscripts are placed to the equilibrium constant symbol K, such as K eq, K c, K p, K a, K b, and K sp.
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Zinc reacts with dihydrogen sulfate in a
single replacement reaction.
Which reaction shows the correctly
balanced equation?
A. Zn + H₂S → 2ZnS + H₂
B. Zn + H₂S → ZnS + H₂
C. Zn+HS → ZnS + H
D. Zn + H₂S → HS + HZn
-
Answer all questions
1. The activation energy for the reaction is 80 KJ
2. The letter that represents the activation energy is E
3. The change in energy for the reaction is 20 KJ
4. The reaction is endothermic
5. The activation energy after the reaction was catalyzed is 50 KJ
6. The letter that represents the activation energy after the reaction was catalyzed is B
1. How do i determine the activaition energy?We can obtain the activation energy for the reaction as follow:
Energy of reactant = 0 KJPeak energy = 80 KJActivation energy = ?Activation energy = Peak energy - Energy of reactant
Activation energy = 80 - 0
Activation energy = 80 KJ
2. How do i know which letter represents activation energy?The letter which represent the activation energy is letter E
3. How do i determine the change in energy?The change in energy can be obtain as follow:
Energy of reactant = 0 KJEnergy of product = 20 KJChange in energy = ?Change in energy = Energy of product - energy of reactant
Change in energy = 20 - 0
Change in energy = 20 KJ
4. How do i know if the reaction is exothermic or endothermic?The change in energy obtained above is positive (i.e 20 KJ).
Thus, we can conclude that the reaction is endothermic reaction.
5. How do i determine the activaition energy after the catalyst is added?We can obtain the activation energy after the catalyst is added as follow:
Energy of reactant = 0 KJPeak energy = 50 KJActivation energy for catalyzed reaction = ?Activation energy = Peak energy - Energy of reactant
Activation energy = 50 - 0
Activation energy for catalyzed reaction = 50 KJ
6. How do i know which letter represents activation energy after the catalyst is added?The letter which represent the activation energy after the catalyst is added is letter B
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A 100 mL graduated cylinder has the following properties (ignoring the base):
Inner Diameter (I. D. ) = 23 mm
Outer Diameter (O. D. ) = 25 mm
Density = 2. 23 g/cm3
What is the vertical distance between 1 mL divisions on the cylinder? Give your answer in mm.
What is the mass of the graduated cylinder (in g)?
0.32mm is the vertical length between 1 mL divisions on the graduated cylinder. The mass of the graduated cylinder is 0.070g.
Inner Diameter = 23 mm
Outer Diameter= 25 mm
Density = 2. 23 [tex]g/cm3[/tex]
Volume = 100 mL
The volume of a cylinder is calculated by:
v = 2 * (π) * r * r * h
Here radius r is the unknown term. To calculate the radius of the cylinder,
r = (Outer Diameter - Inner Diameter) /2
r = (25 mm - 23 mm)/2
r = 1 mm
Calculating the height of the cylinder,
h = 100 mL / π*r*r
h = 100 mL / π*1
h = 100 / π mm
height = 31.8 mm x 100 = 0.32mm
To calculate the mass of the cylinder
m = ρV
V = π * r* r* h
V = π*(1 mm)*(100 mm) / 1000
V= 0.0314 [tex]cm^3[/tex]
m = ρV = 2.23 [tex]g/cm^3[/tex] × 0.0314 [tex]cm^3[/tex]
m = 0.070 g
Therefore, we can conclude that the mass of the graduated cylinder is 0.070g.
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write the balanced chemical equation for the reaction of each of the following carboxylic acids with naoh: benzoic acid
The balanced chemical equation for the reaction of benzoic acid (C6H5COOH) with NaOH is: C6H5COOH + NaOH → C6H5COONa + H2O.
In this reaction, the NaOH reacts with the carboxylic acid (benzoic acid) to form the corresponding salt (sodium benzoate) and water.
The balanced chemical equation for the reaction of benzoic acid with NaOH.
The balanced chemical equation for the reaction of benzoic acid (a carboxylic acid) with sodium hydroxide (NaOH) is:
C6H5COOH + NaOH → C6H5COONa + H2O
Here's a step-by-step explanation:
1. Benzoic acid (C6H5COOH) reacts with sodium hydroxide (NaOH).
2. The carboxylic acid group (COOH) of benzoic acid loses a hydrogen ion (H+) to form the carboxylate ion (C6H5COO-).
3. The sodium ion (Na+) from NaOH binds with the carboxylate ion (C6H5COO-) to form sodium benzoate (C6H5COONa).
4. The hydrogen ion (H+) from benzoic acid and the hydroxide ion (OH-) from NaOH combine to form water (H2O).
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What type of metal is corrosive in an enviornment with a high alkaline environment?
a) symphoteric
b) copper
c) amphoteric
d) carbon
Answer:
it's (A) I know bc i toke the test
Explanation: I hope this helps pls add me as a friend and mark me as brainiest
Answer:
A
Explanation:
Need an reflection and assumption for Chemistry Pd lab chalk and vinegar asap!!!
In terms of Chalk , the reflection and assumption is that Chalk is a soft white rock used for writing, drawing, and various industries.
Assumptions: Chalk is seen as safe for schools, yet may have impurities/allergens causing health issues in large amounts. Also believed eco-friendly due to natural sources and biodegradability.
What is the assumption?In terms of Vinegar, the reflection and assumption is that is an acidic liquid used in cooking, cleaning, and medicine. It's made by fermenting ethanol with acetic acid bacteria.
Vinegar's health benefits are assumed but not fully supported by science. Vinegar is a natural cleaning agent, but may not work as well as commercial products for some stains or germs.
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1. Calculate ΔG∘rxnΔG∘rxn and E∘cellE∘cell at 25∘C∘C for a redox reaction with nnn = 2 that has an equilibrium constant of KKK = 4. 6×10−2.
2. A voltaic cell employs the following redox reaction:
2Fe3+(aq)+3Mg(s)→2Fe(s)+3Mg2+(aq)2Fe3+(aq)+3Mg(s)→2Fe(s)+3Mg2+(aq)
Calculate the cell potential at 25 ∘C∘C under each of the following conditions.
a. Standard conditions
b. [Fe3+]=[Fe3+]= 1. 1×10−3 MM ; [Mg2+]=[Mg2+]= 3. 10 MM
c. [Fe3+]=[Fe3+]= 3. 10 MM ; [Mg2+]=[Mg2+]= 1. 1×10−3 M
The Gibbs energy change is a better parameter which is used to determine the spontaneity or feasibility of a process. If the value of Gibbs free energy change is negative, then the process is spontaneous.
The maximum amount of energy available to the system that can be converted into useful work during a process is called the Gibbs energy. It is denoted by G.
The equation connecting equilibrium constant and G is:
ΔG° = -RT lnK
-8.314 × 298 × ln 4.6 × 10⁻² = 7.62 kJ
E°cell = 0.0592/n log K
0.0592 / 2 log 4.6 × 10⁻² = -0.022 V
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