Reactivity 1.2—Energy cycles in reactions HL Flashcards

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1
Q

Combustion

A

An exothermic chemical process
where a substance is combined with oxygen gas

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2
Q

Molar enthalpy of combustion

A

The enthalpy change when one mole of a substance is burned completely in oxygen under standard conditions. Known as the standard enthalpy of combustion.

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3
Q

Molar enthalpy of formation

A

The energy change that occurs when one mole of a substance is formed from its constituent elements in their standard state. Known as the standard enthalpy of formation.

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4
Q

Diatomic Elements

A

They are called diatomic elements because the atoms appear in pairs. The chemical formulas for these elements are H2, N2, O2, F2, Cl2, Br2, and I2.

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5
Q

Enthalpy of atomisation

A

The enthalpy change when one mole of gaseous atoms is formed from an element in its standard state.

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6
Q

Ionisation energy

A

The energy required with remove one mole of electrons from one mole of gaseous atoms to form one mole of gaseous 1+ ions.

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7
Q

Bond energy, E

A

The energy required to break one mole of
bonds in the gaseous state.

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8
Q

Electron affinity

A

The amount of energy released when a neutral atom gains an electron to form a negatively charged ion.

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9
Q

Lattice enthalpy

A

The enthalpy change when one mole of a solid ionic compound breaks down to form individual gaseous ions.

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10
Q

Born-Haber cycle

A

An energy cycle that can be used to calculate the lattice enthalpy of an ionic compound.

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11
Q

Which compound is expected to demonstrate stronger alignment between the experimental (Born-Haber) and theoretical lattice enthalpy values: NaBr or BeCl?

A

NaBr exhibits greater ionic character in comparison to BeCl, thus leading to a more favorable alignment between the experimental and theoretical lattice enthalpies.

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