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Johnson Group: Experimental Nanoscale Physics

Quantum Transport in Nanoscale Systems. Our group's interests include transport phenomena (charge, energy, and spin) in nanoscale systems, including carbon nanotubes, graphene, transition metal dichalcogenides, and hybrid nanostructures based on these materials conjugated with proteins, synthetic peptides, and DNA. These systems are of rising interest both from the technological (possible future nanoelectronics! Johnson Group (May 2014). From left to right: Charlie Johnson, Iksoo Kwon, Pedro Ducos, Jisoo...

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Johnson Group: Experimental Nanoscale Physics | nanophys.seas.upenn.edu Reviews
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Quantum Transport in Nanoscale Systems. Our group's interests include transport phenomena (charge, energy, and spin) in nanoscale systems, including carbon nanotubes, graphene, transition metal dichalcogenides, and hybrid nanostructures based on these materials conjugated with proteins, synthetic peptides, and DNA. These systems are of rising interest both from the technological (possible future nanoelectronics! Johnson Group (May 2014). From left to right: Charlie Johnson, Iksoo Kwon, Pedro Ducos, Jisoo...
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Johnson Group: Experimental Nanoscale Physics | nanophys.seas.upenn.edu Reviews

https://nanophys.seas.upenn.edu

Quantum Transport in Nanoscale Systems. Our group's interests include transport phenomena (charge, energy, and spin) in nanoscale systems, including carbon nanotubes, graphene, transition metal dichalcogenides, and hybrid nanostructures based on these materials conjugated with proteins, synthetic peptides, and DNA. These systems are of rising interest both from the technological (possible future nanoelectronics! Johnson Group (May 2014). From left to right: Charlie Johnson, Iksoo Kwon, Pedro Ducos, Jisoo...

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1

Johnson Group: Experimental Nanoscale Physics - Resources

http://www.nanophys.seas.upenn.edu/resources.html

Introduction to Carbon Nanotubes. Instructions for growing nanotubes with the CVD system. How to Grow Carbon Nanotubes.doc. Scanning conductance and scanning gate microscopy tutorial.

2

Johnson Group: Experimental Nanoscale Physics

http://www.nanophys.seas.upenn.edu/index.html

Quantum Transport in Nanoscale Systems. Our group's interests include transport phenomena (charge, energy, and spin) in nanoscale systems, including carbon nanotubes, graphene, transition metal dichalcogenides, and hybrid nanostructures based on these materials conjugated with proteins, synthetic peptides, and DNA. These systems are of rising interest both from the technological (possible future nanoelectronics! Johnson Group (May 2014). From left to right: Charlie Johnson, Iksoo Kwon, Pedro Ducos, Jisoo...

3

Johnson Group: Experimental Nanoscale Physics - People

http://www.nanophys.seas.upenn.edu/people.html

AT Charlie Johnson - Principal Investigator. Professor of Physics and Astronomy. Director, Nano/Bio Interface Center. Executive Editor, AIP Advances. Electrical and Systems Engineering. Materials Science and Engineering. Web page: http:/ www.lrsm.upenn.edu/ nanophys/. Master's Degree in Nanotechnology: http:/ www.masters.nano.upenn.edu/. My research interests relates to the development of hybrid bio-nano sensors. Specifically, I am interested in RNA-functionalized graphene-based sensors.

4

Johnson Group: Experimental Nanoscale Physics - Publications

http://www.nanophys.seas.upenn.edu/publications.html

Chemical and Biological Sensing. Carbon Nanotube Electronics and Optics. Local Probes of Nanoscale Devices. Thermal Properties of Carbon Nanotubes. Quantum Dots in Two-Dimensional Electron Gas.

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Web Site by Jinglei - www.pingjl.com

http://www.pingjl.com/index.html

I am Jinglei Ping. I was born and brought up in Hangzhou. Before I went to Sun Yat-sen University. For BS. in Material Physics, and University of Maryland, College Park. For PhD in Chemical Physics. Now I live in Philadelphia. I work as a Resaerch Associate in Charlie Johnson's Experimental Nanoscale Physics Lab. Of University of Pennsylvania, Department of Physics and Astronomy. I am interested in physics, chemistry, and biological interfacing properties of low-dimensional materials.

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