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[23] Hiura H. Tailoring graphite layers by scanning tunneling microscopy. Applied surface science, 2004, 222(1):374-81. [25] Berger C, Song Z, Li T, Li X, Ogbazghi AY, Feng R, Dai Z, Marchenkov AN, Conrad EH, First PN, De Heer WA. Ultrathin epitaxial graphite: 2D electron gas properties and a route toward graphene-based nanoelectronics. The Journal of Physical Chemistry B, 2004, 108(52):19912-6. [26] Son YW, Cohen ML, Louie SG. Energy gaps in graphene nanoribbons. Physical review letters, 2006, 97(21):216803. [27] Wang, X. R. et al. Room-temperature all-semiconducting sub-10-nm graphene nanoribbon field-effect transistors. Phys. Rev. Lett. 100, 206803 (2008). [28] Wang, X. R. et al. N-doping of graphene Through electrothermal reactions with ammonia. Science 324, 768-771 (2009). [29] Han, M. Y., Ozyilmaz, B., Zhang, Y. B.&Kim, P. Energy band-gap engineering of graphene nanoribbons. Phys. Rev. Lett. 98, 206805 (2007). [30] Albert B, Hillebrecht H. Boron: elementary challenge for experimenters and theoreticians. Angewandte Chemie International Edition, 2009, 48(46):8640-68. [31] Oganov AR, Chen J, Gatti C, Ma Y, Ma Y, Glass CW, Liu Z, Yu T, Kurakevych OO, Solozhenko VL. Ionic high-pressure form of elementalPDF Image | Magnetic Properties of Borophene Nanoribbons
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CO2 Organic Rankine Cycle Experimenter Platform The supercritical CO2 phase change system is both a heat pump and organic rankine cycle which can be used for those purposes and as a supercritical extractor for advanced subcritical and supercritical extraction technology. Uses include producing nanoparticles, precious metal CO2 extraction, lithium battery recycling, and other applications... More Info
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