<?xml version="1.0" encoding="UTF-8"?>
<CourseUnit xmlns="http://www.manchester.ac.uk/CUICourseUnitDetails" xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" xsi:schemaLocation="http://www.manchester.ac.uk/CUICourseUnitDetails.xsd">
  <UnitCode Applicant="Y" Label="Unit code" Student="Y">
    <Code>CHEM10021</Code>
  </UnitCode>
  <UnitTitle Applicant="Y" Label="Unit title" Student="Y">
    <Title>Chemistry for Bioscientists 1</Title>
  </UnitTitle>
  <MaxUnits Applicant="Y" Label="Credit rating" Student="Y">
    <Units>10</Units>
  </MaxUnits>
  <TeachingPeriods Applicant="Y" Label="Teaching period(s)" Student="Y">
    <Period>Semester 1</Period>
  </TeachingPeriods>
  <AcademicCareer Applicant="Y" Label="Academic career" Student="Y">
    <Value>Undergraduate</Value>
  </AcademicCareer>
  <UnitLevel Applicant="Y" Label="Unit level" Student="Y">
    <Level>Level 1</Level>
  </UnitLevel>
  <StaffList Applicant="Y" Label="Teaching staff" RoleLabel="Course Unit Role" Student="Y">
    <StaffMember>
      <Name>Lu Shin Wong</Name>
      <Role>Unit coordinator</Role>
    </StaffMember>
  </StaffList>
  <OfferedBy Applicant="Y" Label="Offered by" Student="Y">
    <OrganisationList>
      <Organisation>
        <OrgName></OrgName>
      </Organisation>
    </OrganisationList>
    <GroupList>
      <Group>
        <GroupName></GroupName>
      </Group>
    </GroupList>
    <FheqLevels>
      <FheqLevel>
        <LevelNumber>1</LevelNumber>
        <LevelName>FHEQ level (Framework for Higher Education Qualifications) ' First part HE study/Bachelors ' </LevelName>
      </FheqLevel>
    </FheqLevels>
    <Ects>
      <MaxUnits>European Credit Transfer &amp; Accumulation System Rating :   5.0</MaxUnits>
    </Ects>
  </OfferedBy>
  <MarketingOverview Applicant="Y" Label="Marketing Course unit overview" Student="">
    <Content>&lt;p&gt;This unit will provide a description of: atomic structure and molecular structure using various models for chemical bonding; the structure and properties of aromatic and heteroaromatic molecules; the phenomena of electron delocalisation (resonance); to explain aspects of conformation, isomerism and chirality within molecules; to provide an introduction to the thermodynamics of solutions; to cover key concepts in chemical reaction kinetics and redox processes.&lt;/p&gt;&lt;p&gt;&lt;br /&gt;This unit is delivered in &amp;ldquo;flipped learning&amp;rdquo; format, where the students are expected to carry out the initial learning from online materials (videos, online questions and quizzes). This self-directed learning will be followed by weekly live interactive sessions (question and answer sessions, worked examples) to consolidate understanding.&lt;/p&gt;</Content>
  </MarketingOverview>
  <UnitOverview Applicant="" Label="Course unit overview" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;Bonding and Molecular Structure&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Understanding the nature of matter (development of atomic theory)&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Orbitals, electronic structure, periodicity&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding I: Lewis structures&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Molecular geometry (VSEPR), bond polarity&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding II: orbital hybridisation (carbon, nitrogen and oxygen)&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding III: molecular orbitals&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Electron delocalization (resonance) with biologically relevant examples&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Understanding the phenomena of aromaticity in organic molecules&lt;br /&gt;Conformation, Isomerism and Chirality&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Representing organic molecules as chemical structures&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Rotation about single bonds&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Conformations of simple molecules&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Stereoisomerism and chirality&lt;br /&gt;Energetics, rates and redox processes&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Physical states of matter&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;First law of thermodynamics: work, heat, internal energy, enthalpy and Hess&amp;rsquo;s law&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Second law of thermodynamics: entropy&amp;nbsp;&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Gibbs energy, chemical equilibrium, equilibrium constant, reaction quotient&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Dependence of equilibrium constant on temperature&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Experimental chemical kinetics&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Rates of reaction: instantaneous rate, rate law, rate constant, reaction order&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Integrated rate laws: first order reactions, second order reactions, half lives&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Dependence of rate constant on temperature, Arrhenius equation, catalysis&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Redox processes: oxidation, reduction, electrochemical series&lt;/p&gt;&lt;/div&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </UnitOverview>
  <Aims Applicant="Y" Label="Aims" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;The unit aims to outline the basic principles of chemistry that will be relevant to an understanding of key biological molecules and biochemical processes. The unit continues in semester 2 (see CHEM10022).&lt;/p&gt;&lt;/div&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </Aims>
  <LearningOutcomes Applicant="Y" Label="Learning outcomes" Student="Y">
    <Content>&lt;p&gt;On successful completion of the course students should be able to:&amp;nbsp;&lt;/p&gt;&lt;p&gt;Describe and explain:&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the nature of matter and the formation of chemical bonds&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;how the nature of molecular and hybrid orbitals in molecules dictates the shape and chemical properties of the molecules&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the significance of the various types of isomerism possible within molecular structures&lt;/p&gt;&lt;p&gt;Describe:&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the different models for chemical bonding&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;aromaticity and the properties of aromatic and heteroaromatic compounds&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;chemical kinetic concepts such as reaction rates, rate laws, rate constants and activation energies.&lt;/p&gt;&lt;p&gt;Explain:&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the significance of electron delocalisation (resonance) on the chemical properties of simple molecules&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;and apply the laws of thermodynamics&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the significance of oxidation and reduction processes&lt;/p&gt;&lt;p&gt;Apply:&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;chemical kinetic concepts in calculations to determine reaction rates, rate laws, rate constants and activation energies.&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;knowledge of atomic and molecular structure gained to deduce the likely electronic properties of a molecule&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;knowledge of atomic and molecular structure gained to deduce the likely three-dimensional structure of a molecule&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;chemical mechanistic &amp;lsquo;curly&amp;rsquo; arrows to indicate the delocalisation of electrons within molecules and generate different resonance forms&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the appropriate chemical and biochemical terminology to communicate accurately and concisely chemical information&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;the appropriate chemical structure drawings to communicate accurately and concisely chemical information&lt;br /&gt;&amp;nbsp;&lt;br /&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </LearningOutcomes>
  <Knowledge Applicant="Y" Label="Knowledge and understanding" Student="Y">
    <Content></Content>
  </Knowledge>
  <IntellectualSkills Applicant="Y" Label="Intellectual skills" Student="Y">
    <Content></Content>
  </IntellectualSkills>
  <PracticalSkills Applicant="Y" Label="Practical skills" Student="Y">
    <Content></Content>
  </PracticalSkills>
  <TransferableSkills Applicant="Y" Label="Transferable skills and personal qualities" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;Communication skills: Communicating complex information using the appropriate chemical and biochemical terminology and chemical structure drawings.&lt;/p&gt;&lt;p&gt;Problem-solving skills: Applying chemical principles to deduce the likely chemical and physical properties of new molecules.&lt;/p&gt;&lt;/div&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </TransferableSkills>
  <EmployabilitySkillsList Applicant="Y" Label="Employability skills" Student="Y">
    <Skill>
      <SkillId></SkillId>
      <SkillDescription></SkillDescription>
    </Skill>
  </EmployabilitySkillsList>
  <Syllabus Applicant="Y" Label="Syllabus" Student="Y">
    <Content>&lt;p&gt;Understanding the nature of matter&amp;nbsp;&lt;br /&gt;Bonding and Molecular Structure&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Understanding the nature of matter (development of atomic theory)&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Orbitals, electronic structure, periodicity&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding I: Lewis structures&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Molecular geometry (VSEPR), bond polarity&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding II: orbital hybridisation (carbon, nitrogen and oxygen)&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Chemical bonding III: molecular orbitals&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Electron delocalization (resonance) with biologically relevant examples&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Understanding the phenomena of aromaticity in organic molecules&lt;br /&gt;Conformation, Isomerism and Chirality&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Representing organic molecules as chemical structures&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Rotation about single bonds&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Conformations of simple molecules&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Stereoisomerism and chirality&lt;br /&gt;Energetics, rates and redox processes&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Physical states of matter&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;First law of thermodynamics: work, heat, internal energy, enthalpy and Hess&amp;rsquo;s law&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Second law of thermodynamics: entropy&amp;nbsp;&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Gibbs energy, chemical equilibrium, equilibrium constant, reaction quotient&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Dependence of equilibrium constant on temperature&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Experimental chemical kinetics&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Rates of reaction: instantaneous rate, rate law, rate constant, reaction order&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Integrated rate laws: first order reactions, second order reactions, half lives&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Dependence of rate constant on temperature, Arrhenius equation, catalysis&lt;br /&gt;&amp;bull;&amp;nbsp;&amp;nbsp; &amp;nbsp;Redox processes: oxidation, reduction, electrochemical series&lt;br /&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </Syllabus>
  <TeachingMethods Applicant="Y" Label="Teaching and learning methods" Student="Y">
    <Content></Content>
  </TeachingMethods>
  <AssessmentMethods Applicant="Y" Label="Assessment methods" Student="Y">
    <IntroText> </IntroText>
    <Method>
      <MethodId>1</MethodId>
      <MethodName>Written exam</MethodName>
      <MethodWeight>100%</MethodWeight>
    </Method>
  </AssessmentMethods>
  <FeedbackMethods Applicant="Y" Label="Feedback methods" Student="Y">
    <Content>&lt;div&gt;&lt;p&gt;Students can submit questions, receive feedback and discuss any of the course content during the weekly Q&amp;amp;A sessions with the lecturers.&lt;/p&gt;&lt;p&gt;Written feedback is also provided for online quizzes and practice exercises as the unit progresses.&lt;/p&gt;&lt;/div&gt;</Content>
  </FeedbackMethods>
  <RequirementsList Applicant="Y" Label="Pre/co-requisites" Student="Y">
    <Requirement>
      <UnitCode></UnitCode>
      <UnitTitle></UnitTitle>
      <RequirementType></RequirementType>
      <Description></Description>
    </Requirement>
    <AdditionalRequirement>&lt;p&gt;Students taking this unit should have A-Level Chemistry at grade B or above, or the equivalent.&amp;nbsp;&lt;/p&gt;</AdditionalRequirement>
  </RequirementsList>
  <AcademicPrograms Applicant="Y" Label="Academic programmes" Student="Y">
    <AcademicProgram>
      <Program></Program>
      <Plan></Plan>
      <Level></Level>
      <Requirement></Requirement>
    </AcademicProgram>
  </AcademicPrograms>
  <FreeChoice Applicant="Y" Label="Available as a free choice unit?" Student="Y">
    <Content>N</Content>
  </FreeChoice>
  <Accreditation Applicant="Y" Label="Accreditation" Student="Y">
    <Content></Content>
  </Accreditation>
  <RecommendedReading Applicant="Y" Label="Recommended reading" Student="Y">
    <Content>&lt;div&gt;&lt;div&gt;&lt;p&gt;&lt;u&gt;Recommended course books:&lt;/u&gt;&lt;/p&gt;&lt;p&gt;P. Y. Bruice, Organic Chemistry, 6th (or 7th) edition, Prentice-Hall, 2011 (2014 for 7th edn.).&lt;/p&gt;&lt;p&gt;P. W. Atkins, J. De Paula, Physical Chemistry for the Life Sciences, 2nd edition, Oxford University Press, 2011&lt;/p&gt;&lt;p&gt;&lt;u&gt;Other recommended reading:&lt;/u&gt;&lt;/p&gt;&lt;p&gt;P. W. Atkins, J. De Paula, Elements of Physical Chemistry, 6th edition, Oxford University Press, 2012.&lt;/p&gt;&lt;p&gt;F. A. Carey, Organic Chemistry, 4th edition, McGraw-Hill, 2000.&lt;/p&gt;&lt;p&gt;M. J. Winter, Chemical Bonding (Oxford Chemistry Primer, no. 15), Oxford University Press, 1994.&lt;/p&gt;&lt;p&gt;W.G. Richards, P.R. Scott, Energy levels in atoms and molecules (Oxford Chemistry Primer, no. 26), Oxford University Press, 1994.&lt;/p&gt;&lt;/div&gt;&lt;/div&gt;&lt;p&gt;&amp;nbsp;&lt;/p&gt;</Content>
  </RecommendedReading>
  <StudyHours Applicant="Y" Label="Study hours" Student="Y">
    <IntroText> </IntroText>
    <ScheduledHours Applicant="Y" Label="Scheduled activity hours" Student="Y">
      <ActivityHours>
        <ActivityType>Assessment written exam</ActivityType>
        <Hours>2</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>eAssessment</ActivityType>
        <Hours>12</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>Lectures</ActivityType>
        <Hours>16</Hours>
      </ActivityHours>
      <ActivityHours>
        <ActivityType>Work based learning</ActivityType>
        <Hours>67</Hours>
      </ActivityHours>
    </ScheduledHours>
    <PlacementHours Applicant="Y" Label="Placement hours" Student="Y">
      <ActivityHours>
        <ActivityType></ActivityType>
        <Hours>0</Hours>
      </ActivityHours>
    </PlacementHours>
    <TotalHours Applicant="Y" Label="Independent study hours" Student="Y">
      <Hours>3</Hours>
    </TotalHours>
  </StudyHours>
  <Notes Applicant="Y" Label="Additional notes" Student="Y">
    <Content>&lt;p&gt;&lt;strong&gt;Suggested Study Budget:&lt;/strong&gt;&lt;/p&gt;&lt;p&gt;&lt;u&gt;Lecture&lt;/u&gt;-Listening &amp;amp; making notes-16h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Online quizzes&lt;/u&gt;-Solving/answering questions-12h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Problem sheets / exercises&lt;/u&gt;-Solving/answering questions-10h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Problem-based learning&lt;/u&gt;-Discussing questions from lectures, quizzes or exercises; receiving feedback-12h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Reading&lt;/u&gt;-From recommended reading list-20h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Revision&lt;/u&gt;-Re-read notes, re-watch lectures, practice past years&amp;rsquo; exam papers-25h&lt;/p&gt;&lt;p&gt;&lt;u&gt;Exam&lt;/u&gt;-Multiple choice exam-2h&lt;/p&gt;</Content>
  </Notes>
</CourseUnit>
