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Chapter 2 1Park, S., Boo, H. & Chung, T. D. Electrochemical non-enzymatic glucose sensors. Analytica chimica acta 556, 46-57 (2006). 2Yang, J., Jiang, L.-C., Zhang, W.-D. & Gunasekaran, S. A highly sensitive non-enzymatic glucose sensor based on a simple two-step electrodeposition of cupric oxide (CuO) nanoparticles onto multi-walled carbon nanotube arrays. Talanta 82, 25-33 (2010). 3Niu, X. et al. Recent advances in non-enzymatic electrochemical glucose sensors based on non-precious transition metal materials: opportunities and challenges. RSC Advances 6, 84893-84905 (2016). 4Zhao, W. et al. A glucose-responsive controlled release of insulin system based on enzyme multilayers-coated mesoporous silica particles. Chemical Communications 47, 9459-9461 (2011). 5Wang, X. et al. Room-temperature all-semiconducting sub-10-nm graphene nanoribbon field-effect transistors. Physical review letters 100, 206803 (2008). 6Zhu, Y. et al. Carbon-based supercapacitors produced by activation of graphene. science 332, 1537-1541 (2011). 7Schedin, F. et al. Detection of individual gas molecules adsorbed on graphene. Nature materials 6, 652 (2007). 8Ang, P. K., Chen, W., Wee, A. T. S. & Loh, K. P. Solution-gated epitaxial graphene as pH sensor. Journal of the American Chemical Society 130, 14392-14393 (2008). 9Fowler, J. D. et al. Practical chemical sensors from chemically derived graphene. ACS nano 3, 301-306 (2009). 10Shao, Y. et al. Graphene based electrochemical sensors and biosensors: a review. Electroanalysis 22, 1027-1036 (2010). 11Wang, Y. et al. Electrochemical delamination of CVD-grown graphene film: toward the recyclable use of copper catalyst. ACS nano 5, 9927-9933 (2011). 12Maffucci, A. & Miano, G. Electrical properties of graphene for interconnect applications. Applied Sciences 4, 305-317 (2014). 13Arakawa, Y. Progress in GaN-based quantum dots for optoelectronics applications. IEEE journal of selected topics in quantum electronics 8, 823-832 (2002). 14Nguyen, C., Nguyen, N. & Grider, D. Drain current compression in GaN MODFETs under large-signal modulation at microwave frequencies. Electronics Letters 35, 1380-1382 (1999). 15El Fatimy, A. et al. Terahertz detection by GaN/AlGaN transistors. Electronics Letters 42, 1342-1344 (2006). 16Asif Khan, M., Bhattarai, A., Kuznia, J. & Olson, D. High electron mobility transistor based on a GaN‐Al x Ga1− x N heterojunction. Applied Physics Letters 63, 1214-1215 (1993). 17Cheung, S. & Cheung, N. Extraction of Schottky diode parameters from forward current‐voltage characteristics. Applied Physics Letters 49, 85-87 (1986).
Chapter 4 1Zhao, W. et al. A glucose-responsive controlled release of insulin system based on enzyme multilayers-coated mesoporous silica particles. ChemComm 47, 9459-9461 (2011). 2Varghese, S. S., Lonkar, S., Singh, K., Swaminathan, S. & Abdala, A. Recent advances in graphene based gas sensors. Sens. Actuators B Chem. 218, 160-183 (2015). 3Liu, S. et al. Strain modulation in graphene/ZnO nanorod film schottky junction for enhanced photosensing performance. Adv. Funct. Mater. 26, 1347-1353 (2016). 4Eckmann, A. et al. Probing the nature of defects in graphene by Raman spectroscopy. Nano Lett. 12, 3925-3930 (2012). 5Nayfeh, O. M. Radio-frequency transistors using chemical-vapor-deposited monolayer graphene: performance, doping, and transport effects. IEEE Trans. Electron Devices. 58, 2847-2853 (2011). 6Myoung, J. et al. Optical characteristics of p‐type GaN films grown by plasma‐assisted molecular beam epitaxy. Appl. Phys. Lett. 69, 2722-2724 (1996). 7Alivov, Y. I., Van Nostrand, J., Look, D. C., Chukichev, M. & Ataev, B. Observation of 430 nm electroluminescence from ZnO/GaN heterojunction light-emitting diodes. Appl. Phys. Lett. 83, 2943-2945 (2003). 8Liu, L. et al. Graphene oxidation: thickness-dependent etching and strong chemical doping. Nano Lett. 8, 1965-1970 (2008).
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