NNT761 - CHEMICAL FUNDAMENTALS of NANOTECHNOLOGY

Course Name Code Semester Theory
(hours/week)
Application
(hours/week)
Credit ECTS
CHEMICAL FUNDAMENTALS of NANOTECHNOLOGY NNT761 Any Semester/Year 3 0 3 9
PrequisitesNone
Course languageTurkish
Course typeElective 
Mode of DeliveryFace-to-Face 
Learning and teaching strategiesLecture
Discussion
Preparing and/or Presenting Reports
 
Instructor (s)Assoc. Prof. Dr. Cem Bayram 
Course objectiveBottom-up nanotechnology includes the synthesis of structures and systems in nanoscale starting from the atomic and molecular level. The aim of the course is to teach the students the bottom-up direction synthesis methods and the chemical basis on which these methods can be used. 
Learning outcomes
  1. Students attending the course, Learn the methods of obtaining nanostructures with an inductive approach,
  2. Learn the chemical phenomena used in the synthesis of nanostructures,
  3. Understand the scientific publications on the chemical synthesis and analysis of nano-sized materials.
Course ContentSupramolecular chemistry, self-assemble, hierarchical arrangement, layer-by-layer arrangement, host-guest interactions, soft lithography, nano contact lithography, zeolites, carbon nanomaterials, atomic and molecular clusters, block copolymers and spatial organizations, nucleation and epitaxial growth, surface chemistry , modifications, micelle and dendrimer formations, molecular suppression 
ReferencesNanochemistry ? A Chemical Approach to Nanomaterials, G. A. Ozin, A. C. Arsenault ve L. Cademartiri, 2009, RSC Publishing.
? Nanochemistry, 2nd Edition, G.B. Sergeev ve K.J. Klabunde, 2013, Elsevier 

Course outline weekly

WeeksTopics
Week 1Fundamentals of nanotechnology and introduction to nanochemistry
Week 2Brownian motion, bonds and electronegativity, bond polarity
Week 3electronegativity, covalent and non-covalent interactions
Week 4supramolecular chemistry-host guest interaction
Week 5self assembly-1
Week 6self assembly-2, hierarchical assembly, layer-by-layer assembly
Week 7Midterm
Week 8particle-particle and particle-surface interactions, electrical double layer, zeta potential, DLVO theory
Week 9Nucleation and growth, epitaxial growth
Week 10carbon nanomaterials and characterization
Week 11one dimensional nanomaterials, nanotubes and nanowires
Week 12block copolymersi dendrimers and micelle structures
Week 13soft lithography, nano-imprint lithography
Week 14Term Project- Discusssion
Week 15Final exam preparation
Week 16Final Exam

Assesment methods

Course activitiesNumberPercentage
Attendance00
Laboratory00
Application00
Field activities00
Specific practical training00
Assignments110
Presentation115
Project00
Seminar00
Midterms125
Final exam150
Total100
Percentage of semester activities contributing grade succes350
Percentage of final exam contributing grade succes150
Total100

WORKLOAD AND ECTS CALCULATION

Activities Number Duration (hour) Total Work Load
Course Duration (x14) 14 3 42
Laboratory 0 0 0
Application000
Specific practical training000
Field activities000
Study Hours Out of Class (Preliminary work, reinforcement, ect)14684
Presentation / Seminar Preparation12525
Project000
Homework assignment21530
Midterms (Study duration)12929
Final Exam (Study duration) 16060
Total Workload33138270

Matrix Of The Course Learning Outcomes Versus Program Outcomes

D.9. Key Learning OutcomesContrubition level*
12345
1. Being able to use mathematics, science, and engineering information to develop new methods in the fields of nanotechnology and nanomedicine.    X
2. Being able to search information in Nanotechnology and Nanomedicine fields and to reach, to evaluate and to comment on this information    X
3. Being able to make supplements to the literature and to develop a skill for presenting their studies fluently in written and oral forms in national and international media.    X
4. To have a Professional ethics and social responsibility.    X 
5. By adopting the importance of lifetime learning in principle, actively following the developments in novel technological applications with databases and other sources.     X
6. Being able to choose and to use techniques, devices and software with the suitable information and communication Technologies in order to solve engineering problems.   X 
7. To communicate in oral and written forms in a foreign language at least in the C1 grade level of European Language Portfolio in the fields of nanotechnology and nanomedicine.     X
8. Being able to design experiments, to do experimentation, to analyze and evaluate experimental results and to prepare a report to present.     X
9. Being able to do within discipline and interdisciplinary teamwork   X 

*1 Lowest, 2 Low, 3 Average, 4 High, 5 Highest