UnitLevel 3Undergraduate

MTE3545 Functional materials and devices

Faculty of Engineering

MTE3545 Functional materials and devices is a level 3, 6-credit-point, undergraduate unit from the Faculty of Engineering, offered in 2020 in Semester 2 at Clayton. It needs MTE2544.

Credit points
6
Offered in 2020
Semester 2
Clayton
Assessment
No exam
3 tasks
Workload
144 hours
per semester

This is the 2020 handbook entry. See the 2021 entry.

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Requisites

Before MTE3545

Prerequisites

Pass these before you enrol.

After MTE3545

No unit lists MTE3545 as a prerequisite in the 2020 handbook.

Enrolment rules

Prerequisities: Or MSC2022 or TRC3800 or MSC2111 or PHS2011

Prohibitions: MSC3011, MSC3132, MTE3508

Overview

Electrical and optical properties of materials - dielectrics, ferroelectrics, superconductors and optical fibres; magnetic properties - microscopic origin of magnetism in specific classes of materials, domains, magnet fabrication and applications; nanodevices which rely on the preceding properties, experimental techniques.

Offerings in 2020

Teaching periodCampusMode
Second semesterClaytonOn campus

Assessment

  • Assignment(s)Threshold hurdle
    10%
  • Practical activities and related workThreshold hurdle
    30%
  • Final assessmentThreshold hurdle
    60%

Learning outcomes

When you finish this unit, you should be able to:

  1. 1

    Predict the magnetic moment for a given electron configuration by applying Hund's rules.

  2. 2

    Formulate the coercivity of magnetic particles using the magnetic anisotropy and magneto-static energy terms.

  3. 3

    Describe the temperature dependence of spontaneous magnetisation based on the mean field theory.

  4. 4

    Describe the effect of nanoscale grain refinement on magnetic properties.

  5. 5

    Discuss functional nanomaterials with respect to their synthesis, properties, characterisation and application.

  6. 6

    Discuss novel generations of organic electronic materials and their application in electronic and optoelectronic devices such as solar cells, transistors and light emitting diodes.

Workload and teaching

  • Workshops12 hours
  • Lectures12 hours
  • Applied sessions12 hours
  • Teaching approachProblem-based learning

Minimum total expected workload to achieve the learning outcomes for this unit is 144 hours per semester typically comprising a mixture of 4-6 hours of scheduled learning activities and 6-8 hours independent study per week. Scheduled activities may include a combination of teacher-directed learning, peer-directed learning and online engagement. Independent study may include associated readings, assessment and preparation for scheduled activities.

Where it fits

MTE3545 is part of 1 area of study in the 2020 handbook.

Contacts

Chief Examiners
Professor Kiyonori Suzuki
Unit Coordinators
Professor Kiyonori Suzuki

Common questions

What are the prerequisites for MTE3545?

You need MTE2544 before you enrol. Enrolment rules also apply.

When is MTE3545 offered?

In 2020, MTE3545 runs in Semester 2 at Clayton.

How much work is MTE3545?

The handbook expects about 144 hours of study across the semester. No students have rated its difficulty yet.

Does MTE3545 have an exam?

No. MTE3545 has 3 assessment tasks and no exam.

Which majors and minors include MTE3545?

MTE3545 is part of Robotics and mechatronics engineering.

More details

Credit points
6
Level
3
Study level
Undergraduate
Faculty
Faculty of Engineering
Organisational unit
Department of Materials Science and Engineering
Type
Coursework
EFTSL
0.125
Student contribution
SCA Band 2
Study abroad
Not available
Handbook years
20202021