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fill-in with the best word or phrase. 1. an electron has lower potentia…

Question

fill-in with the best word or phrase.

  1. an electron has lower potential energy when it is _______________ to the nucleus.
  2. p sublevel has ____ orbitals and holds a max of ____ electrons.
  3. atoms (and electrons) are most stable in their _____________ _____________ energy state.
  4. all atoms have their 1st electron fill in what n and sublevel? ______
  5. the order of increasing principal energy levels is from ____ to ____.
  6. _________________ principle states that there is a max of __ electrons in a single orbital and that they must have _________________ spin.
  7. the ______________ principle states that electrons fill an electron configuration for a ground state atom from __ energy to ____ energy
  8. the name of the current atomic model is the _________________ _________________ model.
  9. all noble gasses have ______ valence electrons.
  10. given the symbol 3s², the 3 is the ____________________________ the s is the ___________ and the 2 is the ____________________________
  11. valence electrons determine the ____________________________ properties of an element including ___________ and _____________
  12. a row on the periodic table is called a ___________________
  13. a column on the periodic table is called a _________________ or _________________
  14. the sublevel defines the ______ of the probability electron density cloud.
  15. the outermost occupied principal energy level is the _________________ shell and holds a maximum of __ electrons (except for he, which has __ outermost electrons). this is also called a complete _____________.
  16. an electron has a dual nature; it can behave as both a _____________ and a ____.

Explanation:

Brief Explanations

These questions are about atomic structure and electron behavior, which falls under Chemistry (a subfield of Natural Science). Let's answer each:

  1. An electron has lower potential energy when it is closer to the nucleus (electrostatic attraction; closer = lower PE).
  2. P sublevel has 3 orbitals (pₓ, pᵧ, pz) and holds a max of 6 electrons (2 per orbital × 3).
  3. Atoms (and electrons) are most stable in their lowest (or ground) energy state (minimum energy = stability).
  4. All atoms have their 1st electron fill in n=1, s (1s orbital, lowest energy).
  5. The order of increasing principal energy levels is from lower to higher (n=1 < n=2 < ...).
  6. Pauli Exclusion Principle: max 2 electrons per orbital, with opposite spin.
  7. Aufbau Principle: electrons fill from lowest to highest energy (build-up order).
  8. Current atomic model: Quantum Mechanical model (describes electron probability clouds).
  9. All noble gases (except He) have 8 valence electrons (He has 2; full outer shell).
  10. In \( 3s^2 \): 3 = principal quantum number (n) (energy level), s = sublevel, 2 = number of electrons.
  11. Valence electrons determine chemical properties (e.g., reactivity, bonding) like reactivity and bonding behavior.
  12. A row on the periodic table is a period.
  13. A column is a group (or family).
  14. Sublevel defines the shape of the electron density cloud (s=spherical, p=dumbbell, etc.).
  15. Outermost occupied level: valence shell; max 8 electrons (He: 2); complete octet (or duplet for He).
  16. Electron dual nature: particle and wave (wave-particle duality).

Answer:

  1. closer
  2. 3; 6
  3. lowest; energy
  4. n=1, s
  5. lower; higher
  6. Pauli Exclusion; 2; opposite
  7. Aufbau; lowest; highest
  8. Quantum Mechanical
  9. 8 (He: 2)
  10. principal quantum number (n); sublevel; number of electrons
  11. chemical; reactivity; bonding (or similar properties)
  12. period
  13. group; family
  14. shape
  15. valence; 8; 2; octet (duplet for He)
  16. particle; wave