🇵🇰 Allied Health Sciences Entry Test · flashcards
Allied Health Sciences Entry Test Chemistry Flashcards
66 question-and-answer cards covering Chemistry as it is examined in Allied Health Sciences Entry Test. 24 of them are printed below, taken from across the deck — no signup, no paywall on the preview.
24 sample cards from the Chemistry deck
Sampled from the end of the deck, so these are different cards from the ones shown on the syllabus page.
Why does water have an unusually high boiling point compared to H2S?
Water molecules form strong intermolecular hydrogen bonds (O-H...O), requiring much more energy to separate, whereas H2S has only weak dipole-dipole and dispersion forces.
Define surface tension and explain why it occurs.
Surface tension is the force acting along the surface of a liquid that tends to minimize its surface area. It arises because surface molecules experience a net inward pull from unbalanced intermolecular attractions.
Define vapour pressure of a liquid and state how it changes with temperature.
Vapour pressure is the pressure exerted by the vapour in equilibrium with its liquid at a given temperature. It increases as temperature increases.
Define the boiling point of a liquid in terms of vapour pressure.
The boiling point is the temperature at which the vapour pressure of the liquid becomes equal to the external (atmospheric) pressure.
How does viscosity of a liquid change with temperature, and why?
Viscosity decreases as temperature increases, because higher kinetic energy overcomes intermolecular attractions, allowing molecules to flow past each other more easily.
Compare the four main types of crystalline solids by their constituent particles and bonding.
Ionic (ions, electrostatic bonds), Covalent/network (atoms, covalent bonds), Molecular (molecules, intermolecular forces), Metallic (positive ions in a sea of delocalized electrons, metallic bonds).
Distinguish between crystalline and amorphous solids.
Crystalline solids have a regular, repeating long-range ordered arrangement of particles and sharp melting points; amorphous solids lack long-range order and soften over a range of temperatures (e.g., glass, rubber).
What is a unit cell in a crystal lattice?
A unit cell is the smallest repeating structural unit of a crystal lattice that, when repeated in three dimensions, generates the entire crystal.
Why do ionic solids have high melting points but are brittle?
High melting points result from strong electrostatic forces between oppositely charged ions; they are brittle because displacing the lattice brings like charges adjacent, causing repulsion that shatters the crystal.
State the relative charge and mass of the three subatomic particles.
Proton: charge +1, mass approx 1 amu. Neutron: charge 0, mass approx 1 amu. Electron: charge -1, mass approx 1/1836 amu (negligible).
Define atomic number and mass number.
Atomic number (Z) = number of protons in the nucleus. Mass number (A) = total number of protons plus neutrons in the nucleus.
What are isotopes?
Isotopes are atoms of the same element having the same atomic number (protons) but different mass numbers due to different numbers of neutrons.
State the two main postulates of Bohr's atomic model.
1) Electrons revolve around the nucleus only in fixed circular orbits (stationary states) of definite energy without radiating energy. 2) Energy is absorbed or emitted only when an electron jumps between orbits, equal to the energy difference (E = hf).
According to Bohr, how is the angular momentum of an electron quantized?
Angular momentum is quantized as mvr = n(h/2pi), where n is a whole number (1, 2, 3...), h is Planck's constant, and r is the orbit radius.
What is emitted when an electron falls from a higher to a lower energy level in Bohr's model?
A photon (quantum) of radiation is emitted with energy equal to the difference between the two levels: E = E_high - E_low = hf.
List the four quantum numbers and what each describes.
Principal (n): energy level/shell size. Azimuthal/subsidiary (l): subshell shape. Magnetic (m): orbital orientation in space. Spin (s): direction of electron spin (+1/2 or -1/2).
What are the allowed values of the azimuthal quantum number l, and which subshells do they represent?
l ranges from 0 to (n-1). l = 0 (s), 1 (p), 2 (d), 3 (f).
What are the possible values of the magnetic quantum number for a given l?
The magnetic quantum number m takes integer values from -l to +l, including 0, giving (2l + 1) orbitals in that subshell.
How many orbitals and maximum electrons are in s, p, d, and f subshells?
s: 1 orbital, 2 electrons. p: 3 orbitals, 6 electrons. d: 5 orbitals, 10 electrons. f: 7 orbitals, 14 electrons.
State the Aufbau principle.
Electrons fill orbitals in order of increasing energy, occupying the lowest-energy available orbital first before filling higher-energy ones.
State Pauli's exclusion principle.
No two electrons in an atom can have the same set of all four quantum numbers; an orbital holds at most two electrons, which must have opposite spins.
State Hund's rule of maximum multiplicity.
Electrons occupy degenerate (equal-energy) orbitals singly with parallel spins first, before any orbital is doubly occupied (pairing begins only after each orbital has one electron).
Write the (n+l) rule for determining orbital filling order.
Orbitals fill in order of increasing (n+l) value; if two orbitals have the same (n+l), the one with the lower n fills first. (e.g., 4s, with n+l=4, fills before 3d, with n+l=5).
Write the ground-state electronic configuration of chromium (Z=24) and explain the anomaly.
[Ar] 3d^5 4s^1 (not 3d^4 4s^2). A half-filled 3d^5 with 4s^1 gives extra stability due to symmetry and exchange energy.
What this deck covers
The Chemistry deck follows the Allied Health Sciences Entry Test Chemistry syllabus — 12 chapters and 45 topics — so questions land on material that is genuinely examinable rather than trivia around it. That works out to roughly 5.5 cards per chapter.
Answers are written to be recallable, not just readable — averaging about 157 characters, which is long enough to carry the reasoning and short enough to say out loud.
A deck like this earns its keep on the second and third pass. Read the syllabus first so you know the shape of the subject, then use the cards to find the specific facts that have not stuck.
Chemistry flashcards FAQ
How many Chemistry flashcards are in this Allied Health Sciences Entry Test deck?
66 cards. This page previews 24 of them, sampled evenly across the deck so you can judge the difficulty before installing anything.
Are these Allied Health Sciences Entry Test flashcards free?
Yes. The preview here is free to read with no signup, and the full 66-card deck is free inside the Examius app.
What do the Chemistry cards cover?
They follow the Allied Health Sciences Entry Test Chemistry syllabus — 12 chapters and 45 topics — so the questions track what is actually examinable.
How should I use these flashcards?
Read the syllabus first so you know the shape of the subject, then drill the deck. Examius schedules each card with spaced repetition, so cards you keep missing come back sooner and ones you know drift further apart.