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Summary AQA AS-level/A-level Energetics full revision notes

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Notes on Energetics for AQA AS/A-level Chemistry | instant download | Struggling to memorise Energetics? These beautifully handwritten A-Level AQA Chemistry notes make the trickiest topics easier to understand and revise. Ideal for visual learners, these notes are neat, structured, and directly aligned with the AQA specification. Summarised information meaning concise knowledge. - Handwritten for clarity and visual learning - Covers the full ‘Energetics’ topic concisely - Perfect for quick revision or in-depth study - Digital PDF download – print or view on any device and instant access - uses exam question answers to learn key knowledge for subtopics Whether you're reviewing for mocks or prepping for your A-Level exams, these notes save you time and help lock in with easy-to-read visuals, definitions, and exam-style answer notes. Knowledge for many of the subtopics are in the form of answers to key exam questions so ticks important points when used to answer questions. No refunds as this is an electronic product but can contact if there are any issues with the product. Product should not be re-distributed or re-sold. Apologies for any tiny spelling mistakes as these have been handwritten on a device Trusted by students aiming for top grades– a must-have study tool for any serious A-Level student. Designed by an A-Level student (who got into Imperial for Medicine), for A-Level students – perfect for Year 12 & 13 revision! Good luck!

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energetics
enthalpy change change
in standard States
in heat energy in a reaction where substances
ere under standard conditions
symbol H
units KJ Mol t
standard conditions 2100 kPa 298K 250C
endothermic reactions exothermic reactions
absorb energy from surrounding b release energy to surroundings
A a
Histve

I
froductslower
thalpy thanreactants
productsarehigherinenergy inenergythanreactants
I
enthalpy

time time
e g thermal decomposition
i bonds made B M
beg combustion
bonds broken BB
energy needs to be absorbed to energy released when bonds are
break bonds endothermic formed exothermicprocessand AH i
process so AH is ve ve
energyneeded to break bonds is i
energy released when bonds are
than energy given out when bonds formed energyneeded to break
are formed endothermicreaction initial bonds exothermic reaction
bonds broken in reactants i bondsformedwhenproducts made
AH B Benergy B M energy
mean bond enthalpy enthalpy change needed to break the covalent
on d into gaseous atoms averaged over different molecules
calorimetry used to work out enthalpychangeof combustion
É anawinasniewsmacea
by the flame toprevent adraughtmoving the flame
weighfuelbefore and after burning
IF
ofwaterby aspecificamount to calculate mass of fuel burned
energyfrom fuel transferred tgtdheaygteecraqjthagygbysffinegis.gl mtctgthe
is
surrounding too energytransfer
enthalpy a
moles
Hess Law law to work out enthalpychangesyou can't find out by doing a
experiment
Hess cycle
the cyle formation or combustion depends on the typeof data given
Formation cycle
reactant's Bioducts
AFFElements
insstagnegardhfultiply number of moles in
by
1
DcH enthalpychange of combustion
equation
before calculating DrH
go with arrow keepsign same
go against arrow change sign
combustioncycle y
DfH Ar H
Reactants products
DcH CO2 H2OLACH balance C's and H's then check that
balance this O's are balanced too
according to the question

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