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Physics of Medical Equipment and Nanotechnology II

Study Course Description

Course Description Statuss:Approved
Course Description Version:2.00
Study Course Accepted:07.10.2022 10:55:11
Study Course Information
Course Code:FK_071LQF level:Level 7
Credit Points:2.00ECTS:3.00
Branch of Science:Physics; The Physics of SolidsTarget Audience:Medicine
Study Course Supervisor
Course Supervisor:Jeļena Kosmača
Study Course Implementer
Structural Unit:Department of Physics
The Head of Structural Unit:
Contacts:Riga, 26a Anninmuizas boulevard, 1st floor, Rooms No 147 a and b, fizikaatrsu[pnkts]lv, +371 67061539
Study Course Planning
Full-Time - Semester No.1
Lectures (count)5Lecture Length (academic hours)3Total Contact Hours of Lectures15
Classes (count)0Class Length (academic hours)0Total Contact Hours of Classes0
Total Contact Hours15
Full-Time - Semester No.2
Lectures (count)5Lecture Length (academic hours)3Total Contact Hours of Lectures15
Classes (count)0Class Length (academic hours)0Total Contact Hours of Classes0
Total Contact Hours15
Study course description
Preliminary Knowledge:
Basic knowledge of physics, mathematics and anatomy. Finished course Physics of Medical Equipment and Nanotechnology I.
Objective:
To provide students, who plan to work with nanomedicine and modern medical equipment, with an introduction to nanomedicine technology and basics of medical equipment. To give this introduction within the context of macro and nano-scale processes occurring in a human body, physics, nanoscience and nanotechnology.
Topic Layout (Full-Time)
No.TopicType of ImplementationNumberVenue
1Development and importance of nanomedicine. Opportunities in medical therapy and diagnostics.Lectures1.00auditorium
2Classification of nanomaterials. Nanoparticles. Application of nanoparticles in tumour diagnostics and therapy. Nanotoxicity.Lectures1.00auditorium
3Doppler principle. Dopplerography and ultrasonoscopy. Application of nanomedicine for dopplerography and other methods for use of ultrasound.Lectures1.00auditorium
4Principle of optical tomography. Optical coherence tomography. Electrical impedance tomography. Selective visualisation using quantum dots.Lectures1.00auditorium
5Nanoelectrodes. Nanogels for enhancement of electrical conductivity. Recording of signals from cells using carbon nanotubes. Nanomedicine ethics. Nano security and regulations.Lectures1.00auditorium
6Linearly and circularly polarised light. Its use in therapy. Optical nanoscopes and nanocapsules.Lectures1.00auditorium
7Optical fluorescence diagnosis: basic principles and clinical applications in oncology, cardiology and dentistry. Quantum dots for optical imaging.Lectures1.00auditorium
8Nanotechnology for regenerative medicine and tissue engineering. Tissue transplantation. Development of 3D printing technology. Nanotechnology opportunities and challenges in telemedicine. Communication and data analysis issues in the use of nanoparticles. Nanobiosensors. Nanopharmacy.Lectures1.00auditorium
9Use of X-ray in diagnosis and therapy. Acquiring an image at the nano scale. Nanostructured contrast agents. Conventional computer tomography. Positron-electron annihilation tomography. Single photon emission computer tomography.Lectures1.00auditorium
10Principle of nuclear magnetic resonance. Application of iron oxide nanoparticles for selective MRI image acquisition. Nanoethics.Lectures1.00auditorium
Assessment
Unaided Work:
Each student gives a presentation which must include gathering information and outlining their findings to demonstrate understanding of the use of nanotechnology in medicine and medical equipment.
Assessment Criteria:
Ability to independently accomplish tasks that will make up 50% of the assessment and carry out practical works that will make up 50% of the assessment.
Final Examination (Full-Time):Exam
Final Examination (Part-Time):
Learning Outcomes
Knowledge:Understand and properly use terminology of nanomedicine and medical equipment; identify current challenges of nanotechnology in medicine; describe modern nanomedicine procedures, explain the structure and operating principles of related medical equipment.
Skills:Practically work with nanomaterials, medical equipment, perform classical and nano-medical procedures, interpret their results; compare the pros and cons of nanomedicine and classic medicine methods, analyse risks and opportunities for selection of a method.
Competencies:Recognise physical phenomena, modern nanomaterials and their effects on the human body and explain their use in nanomedicine; evaluate the current situation in nanomedicine, predict its development directions; create ideas for successful application of nanotechnology in medicine, with the potential to develop future nanomedicine methods.
Bibliography
No.Reference
Required Reading
1Hornyak G.L., Tibbals H.F., Dutta J., Moore J.J. Introduction to Nanoscience and Nanotechnology. CRC Press, 2009 (akceptējams izdevums)