Chapter 23 and 24 Vocabulary

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11th

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22 Terms

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Monodentate 🦷
________ (ligands)- Ligands, ammonia, that can only form one co- ordinate bond from each ion or molecule to the central transition metal ion.
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Variable Oxidation State
________- A property of transition elements, the ability to form more than one ion.
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Bidentate 🦷🦷
________ (ligands)- Ligands that can form two co- ordinate bonds from each ion or molecule to the central transition metal ion, for example water (the Mickey Mouse ears, or whatever you call them)
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Surroundings
________- In enthalpy changes, anything other than the chemical reactants and products, for example the solvent, the test tube in which the reaction takes place, the air around the test tube.
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Entropy
________- A measure of the dispersal of energy or disorder of a system.
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Feasibility
________ (of reaction)- In entropy, whether or not the reaction will occur spontaneously.
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Ligand
________- A molecule or ion with one or more lone pairs of electrons available to donate to a transition metal ion.
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Complex
________ (ion)- A central transition metal ion surrounded by ligands.
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Optical isomers
________- Two compounds which contain the same number and kinds of atoms, bonds, and different spatial arrangements of the atoms, but which have non- superimposable mirror images (and cant be rotated b /c the molecules around complex twist, so they still look different even when rotated)
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Stereoisomers
________ Compounds whose molecules have the same atoms bonded to each other but with different arrangements of the atoms in space.
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Geometric Isomers
________- Complexes with the same molecular formulas but different geometrical arrangements of their atoms (same thing as stereo)
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Standard Molar Entropy
________- At standard conditions (p of 10^5 Pa, temp of 298K, and each substance involved in reaction is in its normal physical state) units are J* K^- 1* mol^- 1.
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Standard Molar Gibbs Free Energy of Formation ([delta]G[subscript f][naught])
The free energy change that accompanies the formation of one mole of compound from its elements in their standard stats; units KJ/mol
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Co-ordinate Number
The number of co-ordinate (dative) bonds formed by ligands to the central transition metal ion in a complex
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Stability Constant (K[stab 🔪])
The equilibrium constant for the formation of the complex ion in a solvent from its constituent ions or molecules
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Degenerate 😔 (orbitals)
Atomic orbitals at the same energy level
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Non- degenerate 😃 (orbitals)
Atomic orbitals that have been split to occupy slightly different energy levels
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System
The particular investigation (the reaction itself).
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spontaneous changes
Changes that tend to happen naturally continually
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Gibbs Free energy

1. The energy change that takes into account both the entropy change of a reaction and enthalpy change; reactions are likely to be feasible if the value of the Gibbs free energy change of reaction is **negative**; the Gibbs free energy change of reaction is given y the relationship \[delta\]G\[naught\]=\[delta\]H\[naught\] - T\[delta\]S\[naught\].
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Standard Gibbs Free Energy of Reaction
\[delta\]G\[naught\]=\[delta\]H\[naught\] --T\[delta\]S\[naught\], T is in K not celsius, the Gibbs free energy change when the amount of the reactants in the stoichiometric equation react to give products (must be standard so 298K, 10^5 Pa, reactants in normal states).
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Transition Element
A d-block element that forms one or more stable ions with an incomplete d sub shell.