DF1/DF2 (Enthalpy Changes & Hesse’s law) Flashcards

1
Q

is bond breaking endothermic?

A

yes

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2
Q

what is bond making?

A

exothermic

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3
Q

what is the enthalpy change for an exothermic and endothermic reaction?

A

exo is negative, endo is positive

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4
Q

what is the equation for enthalpy change?

A

energy of the products - energy of the reactants

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5
Q

why is delta H negative for exothermic reactions?

A

because energy has been lost from the chemical bonds to the surroundings

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6
Q

what are the 3 standard conditions for enthalpy?

A

standard temperature 298K
100kPa
1M concentration

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7
Q

how do you convert kelvin to celsius and vice versa?

A

celsius to kelvin, add 273
kelvin to celsius, minus 273

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8
Q

what is the standard enthalpy change for a reaction?

A

the enthalpy change when molar quantities of reactants react together under standard conditions

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9
Q

what is the standard enthalpy change of combustion?

A

when one mole of a substance is burnt completely in oxygen

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10
Q

what is the standard enthalpy change for formation?

A

enthalpy change that occurs when one mole of a compound is formed from its elements

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11
Q

what is standard enthalpy change of neutralisation?

A

enthalpy change that can be measured from the energy given out when acids react with alkalis in aqueous solutions.

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12
Q

how do you use Hesse’s law to draw enthalpy cycles?

A

write the equation you’re trying to find at the top of the cycle
look at the given data
look at the third elements/compounds in the triangle
make the triangle
work out how to calculate deltaH1
add the values

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