Study 4e Atomic Structure Isotopes in MCAT Chemical and Physical Foundations of Biological Systems with focused flashcards that help you recognize the idea, recall the key rule, and apply it in practice-style prompts.
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Flashcard 1: What is the definition of isotopes of the same element?
Answer: Same Z (protons), different A (neutrons). Isotopes share the same atomic number Z but differ in mass number A due to varying neutron counts.
Flashcard 2: Identify the formula for neutrons n in terms of mass number A and atomic number Z.
Answer: n=A−Z. Subtracting atomic number Z from mass number A yields the neutron count, as A includes both protons and neutrons.
Flashcard 3: State the formula for the average atomic mass from isotopic masses and fractional abundances.
Answer: Average mass =∑i(mi×fi). Average atomic mass is the weighted sum of each isotope's mass mi multiplied by its fractional abundance fi.
Flashcard 4: Find the number of neutrons in 1737Cl.
Answer: 20 neutrons. Neutron number is calculated as mass number minus atomic number: 37−17=20.
Flashcard 5: What quantity does mass number A represent for a nuclide?
Answer: Total nucleons: A=p+n. The mass number A equals the sum of protons and neutrons, representing the total number of nucleons in the nucleus.
Flashcard 6: Find the number of electrons in 2656Fe3+.
Answer: 23 electrons. The +3 charge indicates loss of 3 electrons from neutral iron's 26, leaving 23 electrons.
Flashcard 7: Find the number of protons, neutrons, and electrons in neutral 1123Na.
Answer: p=11, n=12, e=11. For neutral sodium, protons equal Z=11, neutrons are 23−11=12, and electrons match protons.
Flashcard 8: Calculate average atomic mass for 35Cl at 75% and 37Cl at 25%.
Answer: 35.5 amu. Weighted average: 0.75×35+0.25×37=26.25+9.25=35.5 amu.
Flashcard 9: What is the charge (in units of e) and approximate location of an electron in an atom?
Answer: Charge −1e; located outside the nucleus. Electrons possess a negative charge equal to the elementary charge and occupy orbitals in the electron cloud surrounding the nucleus.
Flashcard 10: Identify the number of electrons in a neutral atom with atomic number Z.
Answer: Electrons =Z. In neutral atoms, electron count equals the atomic number Z to balance the positive charge from protons.
Flashcard 11: What is the approximate relative mass of a neutron compared with a proton?
Answer: Neutron mass is approximately equal to proton mass. Neutrons and protons have nearly identical masses, both contributing significantly to atomic mass.
Flashcard 12: Which subatomic particle primarily changes between isotopes of the same element?
Answer: Neutrons. Isotopes vary in neutron number while maintaining the same proton count, affecting mass but not chemical identity.
Flashcard 13: State the relationship between net ionic charge, protons p, and electrons e.
Answer: Net charge =p−e (in units of e). Net charge arises from the difference between positively charged protons and negatively charged electrons.
Flashcard 14: What is the charge (in units of e) and approximate location of a neutron in an atom?
Answer: Charge 0; located in the nucleus. Neutrons have no net charge and contribute to the nuclear mass while stabilizing the nucleus against proton repulsion.
Flashcard 15: What is the definition of atomic mass unit in terms of 12C?
Answer: 1 amu=121 the mass of one 12C atom. The amu is defined relative to carbon-12, where 1 amu equals one-twelfth its atomic mass.
Flashcard 16: Which subatomic particle primarily determines an element's chemical identity?
Answer: Protons (atomic number Z). The number of protons determines the element's position in the periodic table and its chemical behavior.
Flashcard 17: What does the notation ZAX specify about an atom or ion?
Answer: Element X, with mass A and atomic number Z. Nuclide notation ZAX indicates the element symbol X with its specific mass number A and atomic number Z.
Flashcard 18: Which option best describes an anion: loss of electrons or gain of electrons?
Answer: Gain of electrons. Anions are negatively charged ions formed by gaining electrons, increasing electron count above protons.
Flashcard 19: What is the definition of an ion in terms of electrons and protons?
Answer: Species with e−=p+ (net charge not zero). An ion forms when the number of electrons differs from protons, resulting in a nonzero net charge.
Flashcard 20: What is the approximate relative mass of a proton compared with an electron?
Answer: Proton is about 1836× the electron mass. Protons are much heavier than electrons, with a mass ratio of approximately 1836:1.
Flashcard 21: What is the charge (in units of e) and approximate location of a proton in an atom?
Answer: Charge +1e; located in the nucleus. Protons carry a positive charge equal to the elementary charge and form part of the dense central nucleus along with neutrons.
Flashcard 22: What quantity does atomic number Z represent for an element?
Answer: Number of protons in the nucleus. The atomic number Z defines the element's identity by specifying the number of protons, which determines its chemical properties.
Flashcard 23: Which option best describes a cation: loss of electrons or gain of electrons?
Answer: Loss of electrons. Cations are positively charged ions formed by losing electrons, reducing electron count below protons.
Flashcard 24: Find the net charge (in units of e) for a species with p=16 and e=18.
Answer: Net charge =−2. Net charge is protons minus electrons: 16−18=−2, indicating an anion.