Answer:
2.481cm³
Explanation:
this is general has equation so the formula is
P1V1/T1 = P2V2/T2
At STP, pressure is 1.01*10⁵ and temperature is 273K
((1.20*10³)400)/(250+273) = ((1.01*10⁵)V2/(273)
V2 = 2.481cm³
grams of Al₂O3: gAl2O3
Answer:
brother answer is this photo
Which atomic model that shows the atomic structure is missing from this set?
In the wave mechanical model, atoms of protons are separated into multiple orbitals and sublevels in addition to surrounding the nucleus at their fundamental energy levels. An atom's framework is the Bohr Model.
Niels Bohr, a scientist, proposed the idea in 1913. According to this theory, electrons move in discrete circular orbits, or shells, around an atom's nucleus. The students are taught about many atomic models in this lesson, including Dalton's, Thomson's, Rutherford's, and Bohr's models.
A positively charged sphere that has had negatively charged electrons inserted into it makes up an atom. An molecule throughout its entirety is electrically neutral because the magnitudes of electrons and protons are equal. Atoms make up all physical matter. The same element's atoms are structure.
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why is the reaction rate for reactants defined as the negative of the change in reactant concentration with respect to time, whereas for products it is defined as the change in reactant concentration with respect to time (with a positive sign)?
The reason why the reaction rate for reactants is defined as the negative of the change in reactant concentration concerning time, whereas for products, it is defined as the change in reactant concentration concerning time (with a positive sign) is because a reaction rate is a measure of the speed at which a reaction takes place.
Let's understand it in depth:
The reaction rate is determined by how fast the reactants are being used up or consumed and how quickly the products are being formed. If the reactants are being used up rapidly and the products are being formed slowly, the reaction rate will be slower than if the reactants were being used up slowly and the products were being formed rapidly. In general, the rate of a chemical reaction is expressed as the change in concentration of one or more of the reactants or products over a given time.
To calculate the reaction rate, you need to measure the change in concentration of one or more of the reactants or products over time. If the concentration of the reactant decreases over time, the reaction rate is expressed as a negative number. On the other hand, if the concentration of the product increases over time, the reaction rate is expressed as a positive number.
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the decomposition of is first order in and has a rate constant of at a certain temperature. what is the half-life for this reaction? how long will it take for the concentration of to decrease to 25% of its initial concentration? if the initial concentration of is 1.00 m, how long will it take for the concentration to decrease to 0.78 m? if the initial concentration of is 0.150 m, what is the concentration of after ? after ?
The half-life for the reaction is 0.693/k. It will take approximately 1.386/k seconds for the concentration of A to decrease to 25% of its initial concentration. It will take approximately 2.218/k seconds for the concentration of A to decrease to 0.78 M. If the initial concentration of A is 0.150 M, the concentration of A after 5 half-lives is 0.00938 M, and after 10 half-lives it is 0.00059 M.
The decomposition of A is a first-order reaction with a rate constant of k at a certain temperature. The rate law for this reaction is given by:
Rate = k[A]
The half-life for a first-order reaction is given by the equation:
t1/2 = 0.693/k
Substituting the given rate constant into this equation gives the half-life for the reaction.
To calculate how long it will take for the concentration of A to decrease to 25% of its initial concentration, we can use the equation:
[tex]ln\frac{A_{t} }{A_{0}} = -k_{t}[/tex]
Substituting 0.25[A]0 for [A]t and the given rate constant into this equation, we can solve for t.
Similarly, to calculate how long it will take for the concentration of A to decrease to 0.78 M, we can use the same equation and substitute 0.78 M for [A]t and the given rate constant into the equation.
To determine the concentration of A after a certain amount of time has passed, we can use the equation: [A]t = [A]₀ [tex]e^{-kt}[/tex]
Substituting the given rate constant and the time elapsed into this equation will give us the concentration of A at that time.
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the concentration of o2 in water is 0.590g per liter at an oxygen pressure of around 15.5 atm. what is the henry's law constant for o2
The Henry's law constant for O2 in water given the concentration of O2 in water is 0.590 g/L and an oxygen pressure of around 15.5 atm is 4.42 x 10^-4 M/atm.
Henry's Law relates to the concentration of a gas dissolved in a solvent to the pressure of that gas in equilibrium with the solvent. According to Henry's Law, the concentration of gas in a liquid is directly proportional to the partial pressure of the gas in the atmosphere over the liquid. The law is as follows: c = kPwhere c is the concentration of the gas in the liquid, P is the partial pressure of the gas in the atmosphere over the liquid, and k is a proportionality constant known as the Henry's law constant. To find the value of Henry's Law constant for O2 in water, we will use the formula: k = c / P Given that the concentration of O2 in water is 0.590 g/L and the oxygen pressure is 15.5 atm, we can substitute these values to find the value of Henry's law constant. k = c / Pk = (0.590 g/L) / (15.5 atm)k = 0.038 M/atm
The value of Henry's Law constant for O2 in water is 0.038 M/atm.
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Will a supersaturated solution return back to being a saturated solution once a solute crystal has been added?
Yes, a supersaturated solution will return back to being a saturated solution once a solute crystal has been added.
Supersaturated solution explained.A supersaturated solution is a solution that contains more dissolved solute than would be possible under normal circumstances at a given temperature and pressure. In a supersaturated solution, the solute molecules are able to remain dissolved in the solvent even though they would normally begin to precipitate out of the solution. This can happen when a solution is prepared by dissolving a solute in a solvent at an elevated temperature and then cooling the solution rapidly, preventing the solute from crystallizing out of the solution. Supersaturated solutions are often unstable and will eventually return to a saturated state if given the opportunity to do so, such as by the addition of a seed crystal or agitation of the solution.
When a solute crystal is added to a supersaturated solution, it provides a nucleation site for the solute to crystallize. As the solute molecules attach to the crystal, they are removed from the solution, causing the concentration to decrease. Eventually, the concentration will decrease to the point where it becomes saturated, and no more solute will dissolve.
Thus, adding a solute crystal to a supersaturated solution causes the excess solute to come out of the solution and return it to a saturated state.
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Ascorbic acid has a molar mass of 176. 14 g/mol. What is the molecular formula of ascorbic acid?
The molecular formula of Ascorbic acid is C6H8O6 having the molar mass of 176.14 g/ mole.
Ascorbic acid is known as the chemical name for Vitamin C. Ascorbic acid is commonly found in high concentrations in citrus fruit. This acid is also found in tomatoes, broccoli, and many other fruits and vegetables. Vitamin C is a nutrient of the body needs to form blood vessels, cartilage, muscle and collagen in bones. This vitamin is also vital to the body's healing process.
A molecular formula is defined as a chemical formula of a molecular compound that shows the kinds and numbers of atoms present in a molecule of the compound. This is a way of presenting information about the chemical proportions of atoms that constitute a particular chemical compound or molecule using chemical element symbols and numbers.
A molecule of the ascorbic acid will have a mass of 176.124 atomic mass units.
This is determined by adding 6 X 12.011 for carbon + 8 X 1.008 for hydrogen + 6 X 15.999 for oxygen.
This is equals to the 72.066 for carbon + 8.064 for hydrogen + 95.994 for oxygen. Added together, these equal 176.124 molecular mass.
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assuming you have an agonist, a competitive antagonist, and an easy assay for measuring binding of the agonist, describe a simple experiment that would allow you to determine specific binding, nonspecific binding, and total binding of the agonist at a single concentration.
A simple experiment to determine the specific binding, nonspecific binding, and total binding of an agonist at a single concentration would involve the following steps:
1. Pre-incubate a set of samples containing the agonist and various concentrations of the competitive antagonist. This will allow you to calculate the fractional inhibition of binding (FIB) of the agonist by the antagonist.
2. Use the easy assay to measure the binding of the agonist to its target. This will give you the total binding of the agonist.
3. To calculate the nonspecific binding of the agonist, subtract the total binding from the FIB. This will give you an estimate of the amount of agonist that binds to sites other than the target.
4. Finally, to calculate the specific binding of the agonist, subtract the nonspecific binding from the total binding. This will give you an estimate of the amount of agonist that binds to its target.
Using this experiment, you can quickly determine the specific, nonspecific, and total binding of an agonist at a single concentration. This is a valuable tool for understanding how drugs interact with their targets and can be used to optimize drug design and development.
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An intoxicated driver has 12ml ethy alcohol in his blood. Calculate molarity
The molarity is 0.000052 Molar for an intoxicated driver who has 12ml ethyl alcohol in his blood.
We must be aware of the molecular weight of ethyl alcohol to compute molarity (C2H5OH).
Ascertaining the atomic weight of C2H5OH yields the accompanying outcomes: (1 x 16.00 g/mol for oxygen) + (2 x 12.01 g/mol for carbon) + (6 x 1.01 g/mol for hydrogen) = 46.07 g/mol
We presently need to realize how much blood the 12 ml of ethyl liquor break up to decide the molarity of ethyl liquor in the driver's blood. Expect the driver to have a blood volume of 5 liters generally speaking (5000 ml).
To get the quantity of ethyl alcohol in moles, multiply 12 ml by (1 L/1000 ml) x (1 mol/46.07 g) to get 0.00026 mol.
It is possible to compute the amount of ethyl alcohol in the driver's blood as follows: 0.00026 mol/5 L = 0.000052 M
The amount of ethyl alcohol in the driver's blood is thus 0.000052 Molar.
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A sealed flask contains
3.6 atm H2 gas and
1.8 atm 02 gas.
What is the total pressure in the
flask in atm?
The reaction system CO(g) + 2 H2(g) = CH3OH(g) is at equilibrium. When H2 is added to the container, the reaction shifts to the right the partial pressure of Co does not change and the partial pressure of CH3OH decreases
The reaction system CO(g) + 2 H2(g) = CH3OH(g) is at equilibrium, meaning that the rate of the forward reaction is equal to the rate of the reverse reaction. If H2 is added to the container, the forward reaction becomes favoured and shifts to the right. This increases the amount of products (CH3OH) formed, and decreases the amount of reactants (CO and H2). As a result, the partial pressure of CO remains the same, while the partial pressure of CH3OH decreases.
This is due to Le Chatelier's Principle, which states that when a system at equilibrium is subjected to an external stress, the system will adjust to minimize the stress. In this case, the stress is the addition of H2, which is favouring the formation of products and disrupting the equilibrium. The system responds by decreasing the amount of products formed and shifting the reaction back to equilibrium.
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a solution made by adding solid sodium hypochlorite (naclo) to enough water to make 2.00 l of solution has a ph of 10.50. calculate the number of moles of naclo that were added to the water.
The number of moles of NaClO that were added to the water are calculated to be 6.23 × [tex]10^{-11}[/tex] mol.
In this case, we know that the pH of the solution is 10.50. Using the formula of pH, we can find the concentration of hydrogen ions.
The pH of a solution can be calculated using the following formula:
pH = -log[[tex]H^+[/tex]]
where [[tex]H^+[/tex]] is the concentration of hydrogen ions in the solution.
Plugging in the values.
10.50 = -log[[tex]H^+[/tex]]
[tex][H^+]=10^{10.50}[/tex]
[tex][H^+] =3.162 \times 10^{-11} mol/L[/tex]
Now, let us find concentration of NaClO.
Since sodium hypochlorite is a salt, it dissociates in water to form ions.
The balanced equation for the dissociation of sodium hypochlorite is:
NaClO(s) → [tex]Na^+(aq) + ClO^-(aq)[/tex]
The concentration of sodium hypochlorite can be calculated from the concentration of hypochlorite ions using the stoichiometry of the reaction.
Since there is a 1:1 ratio between NaClO and , the concentration of NaClO is also [tex]3.162 \times 10^{-11} mol/L[/tex].
To find the number of moles of NaClO added to the solution, we need to multiply the concentration by the volume:
moles NaClO = concentration x volume
moles NaClO = [tex]3.162 \times 10^{-11} mol/L \times 2L[/tex]
moles NaClO = 6.23 × [tex]10^{-11}[/tex] mol.
Therefore, the number of moles of NaClO that were added to the water is 6.23 × [tex]10^{-11}[/tex] mol..
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How oxides of nitrogen cause acid rain
Acid deposition is caused when sulphur dioxide (SO2) and nitrogen oxides (NOx) are emitted into our atmosphere. These chemicals SO2 and NOx, react with water, oxygen and other chemicals to form both sulphuric and nitric acids.
when a glucose molecule loses a hydrogen atom as the result of an oxidation-reduction reaction, the molecule becomes group of answer choices hydrogenated. reduced. hydrolyzed. oxidized.
The molecule becomes oxidized when a glucose molecule loses a hydrogen atom due to an oxidation-reduction reaction.
Let's understand this in detail:
1. Oxidation is when the loss of electrons or gain of oxygen atoms takes place from an atom or molecule. In a chemical reaction, if a molecule is oxidized, it will lose electrons or hydrogen or gain oxygen atoms. Oxidation leads to the loss of electrons, resulting in the molecule becoming more positively charged.
2. Reduction is a process in which there is the gain of electrons or loss of oxygen atoms from an atom or molecule. In a chemical reaction, if a molecule is reduced, it will gain electrons or hydrogen or lose oxygen atoms. Reduction leads to the gain of electrons, making the molecule more negatively charged.
3. Glucose is a simple sugar that is the primary energy source for the body's cells. Glucose is a carbohydrate broken down during cellular respiration in the presence of oxygen to produce ATP molecules.
4. The molecule becomes oxidized when a glucose molecule loses a hydrogen atom due to an oxidation-reduction reaction. Oxidation leads to the loss of electrons, resulting in the molecule becoming more positively charged.
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mateo is the head of a retail marketing company. he has a team whose leader has just left. mateo needs to replace the teams leader and pours over resumes. he knows that this team is difficult to focus and requires just the right person to keep them on track. what kind of leadership theory would you say mateo subscribes to?
a. situational theory
b. great man theory
c. transactional theory
d. participative theory
Answer:
Based on the information provided, it seems that Mateo subscribes to the situational theory of leadership. This theory suggests that the most effective leadership style depends on the situation at hand, and that a good leader will be able to adapt their leadership style to suit the needs of their team. Mateo is specifically looking for someone who can keep the team focused and on track, indicating that he recognizes the importance of tailoring his leadership approach to the situation.
Please help!!
Hydrogen has two stable isotopes, 1^H and 2^H, Find the Average Atomic Mass relaizing that 1H has an
abundance of 98. 5%
The average atomic mass of hydrogen in the periodic table rounds to 1 because hydrogen-1 is the most frequent isotope of hydrogen.
How is the mean atomic mass determined?Using the atomic masses of each isotope and their percent abundances, get the average atomic mass. To convert each percentage of abundance to a decimal, divide it by 100. Add the atomic mass of the isotope to this value. To find the average atomic mass, add the atomic masses of each isotope.
One proton, one electron, and no neutron make up the hydrogen atom. Because hydrogen has no neutrons, its mass number is equal to its atomic number, which is 1.
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30 POINTS ANYONE?????????
9.0 moles of Na3PO4 will form from 9.0 moles of H3PO4, rounded to the tenths place.
How to solveTo determine how many moles of Na3PO4 form from 9.0 mol H3PO4, we need to use stoichiometry.
First, we'll identify the mole ratio between H3PO4 and Na3PO4 in the balanced chemical equation:
3NaOH + H3PO4 → 3H2O + Na3PO4
From the balanced equation, we can see that the mole ratio between H3PO4 and Na3PO4 is 1:1.
This means that for every 1 mole of H3PO4 reacted, 1 mole of Na3PO4 is produced.
Since we have 9.0 mol H3PO4:
9.0 mol H3PO4 * (1 mol Na3PO4 / 1 mol H3PO4) = 9.0 mol Na3PO4
So, 9.0 moles of Na3PO4 will form from 9.0 moles of H3PO4, rounded to the tenths place.
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Which set of products is correct for
this double replacement reaction?
AgNO3(aq) + Na₂CO3(aq) →
Remember that each formula must
have a balanced charge.
The double replacement reaction's chemical equation for balancing between AgNO3(aq) and Na2CO3(aq) is: 2AgNO3(aq) + Na2CO3(aq) → Ag2CO3(s) + 2NaNO3(aq)
What effects do you anticipate when NaCl and AgNO3 solutions are combined?When sodium chloride (NaCl) solution and silver nitrate (AgNO3) are mixed, the ions of both compounds exchange. The consequence is the formation of white precipitates of sodium nitrate solution (NaNO3) and silver chloride (AgCl).
How can NaCl be used to standardise AgNO3?Take a known quantity of standard sodium chloride (e.g., 10 mL diluted to 100 mL for standardised 0.0141 N agNO3 or 50 mL diluted to 100 mL for standardised 0.141 N agNO3). Add 1.0 mL of K2CrO4 indicator solution, 1 spatula of calcium carbonate, and titrate the mixture with AgNO3 to a pinkish-yellow endpoint.
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A 100.0 gram sample of Polonium- 210 is contained for 828 days. How many half lives occur during this period of time, if the half live us 138 days?
4 half-lives will occur during this period of time.
Explanation:Formula used :
where,
a = amount of reactant left after n-half lives and
time t = Initial amount of the reactant.
decay constant = half life of an isotope
n = number of half lives
We have :
a = ?
t = 552 days
n = 4
4 half-lives will occur during this period of time.
DO MARK BRAINLIEST!HAPPY LEARNING!How many g of water are needed to create a 4 molal solution with 9 moles of naOH
To make a 4 molal solution using 9 mol of NaOH, we need 2250 g of water.
How can the mass of water needed to make a 4 molal solution with 9 mol of NaOH be calculated?NaOH mass equals moles of NaOH times its molar mass, or 360.00 g.
Molality is defined as moles of solute divided by kilograms of solvent.
When we rewrite the equation, we obtain:
mass of the solvent is equal to the product of the solute's moles and its molality.
Inputting the values provided yields:
mass of the solvent equals 9 mol/4 mol/kg
2.25 kg is the solvent's mass.
The mass of water is then converted from kilogrammes to grammes:
2.25 kg times 1,000 g/kg is the mass of water.
water weighs 2250 g.
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A gummy bear has a mass of about 2.3 g and a volume if about 1 mL. About 12% of the mass of the gummy bear is sugar. Estimate the sugar concentration in a gummy bear.
To estimate the sugar concentration in a gummy bear, we first need to determine the mass of sugar in the gummy bear.
Given that the gummy bear has a mass of 2.3 g and 12% of its mass is sugar, we can calculate the mass of sugar in the gummy bear as follows:
Mass of sugar = 12% x 2.3 g = 0.276 g
Next, we need to convert the volume of the gummy bear to liters, since concentration is typically expressed in units of moles per liter. Since 1 mL = 0.001 L, the volume of the gummy bear is:
Volume of gummy bear = 1 mL = 0.001 L
Now we can calculate the sugar concentration in the gummy bear in units of moles per liter. The molar mass of sugar is about 342 g/mol, so the number of moles of sugar in the gummy bear is:
Number of moles of sugar = 0.276 g / 342 g/mol = 0.000807 mol
Therefore, the sugar concentration in the gummy bear is:
Sugar concentration = number of moles of sugar / volume of gummy bear
= 0.000807 mol / 0.001 L
= 0.807 mol/L
So, the estimated sugar concentration in a gummy bear is 0.807 mol/L.
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steve jobs was said to be one of the most charismatic leaders in history. those who worked with him were inspired by his enthusiasm and optimism. when speaking to his company, he loved to use words like "extraordinary," "amazing," and "incredible." people couldnt help but mirror his excitement. the leadership of steve jobs could best be described as what kind of leadership theory?
a. situational theory
b. contingency theory
c. transactional theory
d. relationship theory
Answer:
The leadership of Steve Jobs could best be described as a transformational leadership theory. Transformational leaders inspire and motivate their followers by creating an inspiring vision and encouraging creativity, innovation, and change. They also use emotional appeals to get followers to invest in the vision and create a sense of unity and common purpose among the team. Steve Jobs' use of enthusiastic language and charisma to inspire his team reflects the qualities of a transformational leader.
Compose the cathode and anode processes of melt electrolysis of MgS, the total electrolysis equation
Answer:
The electrolysis of MgS by melt electrolysis involves the use of a molten salt as the electrolyte. The cathode and anode processes and the overall electrolysis equation are as follows:
Cathode: Mg2+(l) + 2e- → Mg(l)
Anode: S2-(l) → S(g) + 2e-
Overall: MgS(l) → Mg(l) + S(g)
At the cathode, magnesium ions (Mg2+) are reduced to magnesium metal (Mg) by gaining two electrons (2e-) from the cathode. This process occurs due to the higher reduction potential of Mg2+ compared to S2-.
At the anode, sulfide ions (S2-) are oxidized to sulfur gas (S) and electrons (e-) by losing two electrons. This process occurs due to the higher oxidation potential of S2- compared to Mg2+.
The overall electrolysis equation shows that magnesium sulfide (MgS) is broken down into magnesium metal (Mg) and sulfur gas (S) by the application of an electric current.
It's worth noting that molten salt electrolysis is commonly used for the production of metals such as aluminum and magnesium, as it allows for the separation of the metal from its ore in a relatively efficient manner. However, the high temperatures required for melt electrolysis mean that it can be an energy-intensive process.
The balanced chemical equation showing between quicklime and water is
The balanced chemical equation for the reaction between quicklime (calcium oxide, CaO) and water (H2O) is as follows:
CaO + H2O → Ca(OH)2
This equation represents a classic example of an acid-base reaction, in which the calcium oxide, which is a basic oxide, reacts with water, a proton donor, to form calcium hydroxide, a strong base. The reaction is exothermic and releases a significant amount of heat, making it useful for various industrial applications, such as in cement production and as a desiccant.
Calcium hydroxide, also known as slaked lime, is a white crystalline solid that is sparingly soluble in water and has many applications in agriculture, construction, and environmental remediation.
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State two advantages of buying concentrated products rather than dilute products
Two advantages of buying concentrated products rather than dilute products are that they are generally more cost-effective than dilute products because they require less packaging, transportation, and storage space. And the second advantage is that concentrated products offer greater flexibility and customizability compared to dilute products.
What is more harmful - concentrated or dilute chemicals?The level of harm a chemical poses depends on various factors, including the specific chemical involved, its concentration, and the mode of exposure. In general, concentrated and dilute chemicals can be harmful if used or mishandled.
Why are concentrated chemicals considered hazardous?Concentrated chemicals can be particularly hazardous because they contain a higher concentration of the active ingredient, which means that a smaller amount of the chemical can have a more potent effect. This can increase the risk of accidental exposure, which can be dangerous or even fatal.
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Many common things you use regularly are colloids except .......
-milk
-hair
-spray
-paint
-alloy
Answer:
Hair
Explanation:
Colloid is used as thickening agents in industrial products, such as toothpaste, paints, inks, etc. Milk is one of the most common colloids, because of the thickening agents. spray, clouds, fog, etc., are a type of colloid. Paint is a type of colloid because it disperses particles through the paint. Alloy is an example of a colloidal solution. Hair does not have anything to do with colloid.
which has the most atoms? 20g C or 70g Zn
Therefore, the 20g of C has more atoms than the 70g of Zn.
How is number of atoms determined?To determine which sample has the most atoms, we need to use Avogadro's number, which is the number of atoms in a mole. Avogadro's number is approximately 6.022 x 10^23 atoms/mole.
First, we need to determine how many moles of each substance we have. We can do this by dividing the given mass by the molar mass of the element. The molar mass of carbon (C) is approximately 12 g/mol, and the molar mass of zinc (Zn) is approximately 65 g/mol.
For 20g of C:
moles of C = 20 g / 12 g/mol ≈ 1.67 moles
For 70g of Zn:
moles of Zn = 70 g / 65 g/mol ≈ 1.08 moles
Now, to determine the number of atoms, we can multiply the number of moles by Avogadro's number.
For 20g of C:
number of atoms = 1.67 moles x 6.022 x 10^23 atoms/mole ≈ 1.00 x 10^24 atoms
For 70g of Zn:
number of atoms = 1.08 moles x 6.022 x 10^23 atoms/mole ≈ 6.50 x 10^23 atoms
Therefore, the 20g of C has more atoms than the 70g of Zn.
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Part a: determination of mass percent of iron (fe) mass of evaporating dish and unknown sample g mass of evaporating dish g mass of original sample g mass of evaporating dish after removing iron fillings g mass of fe g percent of fe in sample % calculations:
Fe's mass percent composition is equal to 55.85 g/mol times 329.27 g/mol, or 100%. Fe's mass percent composition is equal to 0.1696 times 100%. Fe has a mass percentage composition of 16.96%.
Mass percent is best expressed using the formula mass percentage mass of chemical x measure the mass of combination) x 100. To express the amount as a percentage, multiply the value at the top by 100.
Titanium (35 percent), oxygen (30 percent), silicate (15 percent), and aluminium make up the majority of the Earth's mass (13 percent).
The mass percent is determined by dividing the amount of compound or solute by the amount of the component or solute. A percent is obtained by multiplying the result by 100. A compound's composition can be determined by applying the formula: mass percentage = (mass of element in 1 mole of compound /mass of 1 mole of compound ) 100.
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"Complete question"
Lab Report Sheet: Part A: Determination of Mass Percent of Iron (Fe) Mass of evaporating dish and unknown sample _____ g Mass of evaporating dish _____ g Mass of original sample _____ g Mass of evaporating dish after removing iron fillings _____ g Mass of Fe _____ g Percent of Fe in sample _____ % Calculations: fill in the blanks.
what is the definition of effusion? group of answer choices the average distance travelled by a molcule after hundreds of collisions. the average distance travelled by a particle between collisions. the leakage of gas molecules from a container through a tiny hole the spreading of gas molecules through space.
Effusion can be defined as the leakage of gas molecules from a container through a tiny hole.
Effusion is one of the important physical properties of gases. It is defined as the process in which gas molecules pass through a tiny hole from one compartment to another. Effusion is based on Graham's law which states that "the rate of effusion of a gas is inversely proportional to the square root of its molecular mass or weight. "This law was proposed by Thomas Graham in 1846. It states that the effusion rate of a gas is inversely proportional to the square root of its molar mass.
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The definition of effusion is the leakage of gas molecules from a container through a tiny hole.
Effusion refers to the process by which a gas flows through a tiny hole in a container into an area of lower pressure. The rate of effusion can be influenced by factors such as the size of the hole, the mass of the gas molecules, and the temperature of the gas. In effusion, the gas molecules move from an area of higher pressure to an area of lower pressure.
The rate of effusion is influenced by several factors, including the size of the hole, the mass of the gas molecules, and the temperature of the gas. The rate of effusion is directly proportional to the average velocity of the gas particles. Therefore, lighter molecules will effuse faster than heavier molecules. The average distance travelled by a particle between collisions is called mean free path while the spreading of gas molecules through space is called diffusion. Therefore, the answer to the question is "the leakage of gas molecules from a container through a tiny hole."
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A marshmallow is placed in a microwave to be heated for smores. The marshmallow has a 86 mL at a temperature of 543 °C. What temperature, in K, would the
marshmallow need to be if the volume changed to 51.1 ml?
Answer: 484.94 K
Explanation:
T2 = T1 X V2 / V1
Temperature must be in kelvin so 543 + 273.15 =816.15
816.15 X 51.1 / 86
Answer: We can use the combined gas law to solve this problem:
(P₁V₁/T₁) = (P₂V₂/T₂)
where P is pressure, V is volume, and T is temperature in Kelvin.
We know that P₁ = P₂ (the pressure is assumed to be constant), and we are given V₁, T₁, and V₂. We can solve for T₂:
(P₁V₁/T₁) = (P₂V₂/T₂)
T₂ = (P₂V₂/T₁) * (T₁/P₁V₁)
We need to convert the initial temperature from Celsius to Kelvin:
T₁ = 543 + 273 = 816 K
Substituting the values:
T₂ = (1 atm * 86 mL / 816 K) * (51.1 mL / 1 atm * 86 mL)
T₂ = 0.0629 * 51.1 * 1000 = 3217 K
Therefore, the marshmallow would need to be heated to a temperature of 3217 K for its volume to change from 86 mL to 51.1 mL.
Enjoy (: