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Orientation-controlled,low-temperature plasma growth and applications of h-BN nanosheets
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作者 Ivan Sergeevich Merenkov Mikhail Sergeevich Myshenkov +11 位作者 Yuri Mikhailovich Zhukov Yohei Sato Tatyana Sergeevna Frolova Denis Vasilevich Danilov Igor Alekseevich Kasatkin Oleg Sergeevich Medvedev roman vladimirovich pushkarev Olga Iva no vna Sin itsyna Masami Terauchi Irina Alekseev na Zvereva Marina Leonidovna Kosinova Ken Ostrikov 《Nano Research》 SCIE EI CAS CSCD 2019年第1期91-99,共9页
Dimensionality and orientation of hexagonal boron nitride(h-BN)nanosheets are promising to create and control their unique properties for diverse applications.However,low-temperature deposition of vertically oriented ... Dimensionality and orientation of hexagonal boron nitride(h-BN)nanosheets are promising to create and control their unique properties for diverse applications.However,low-temperature deposition of vertically oriented h-BN nanosheets is a significant challenge.Here we report on the low-temperature plasma synthesis of maze-like h-BN nanowalls(BNNWs)from a mixture of triethylamine borane(TEAB)and ammonia at temperatures as low as 400℃.The maze-like BNNWs contained vertically aligned stacks of h-BN nanosheets.Wavy h-BN nanowalls with randomly oriented nanocrystalline structure are also fabricated.Simple and effective control of morphological type of BNNWs by the deposition-mperature is demonstrated.Despite the lower synthesis temperature,thermal stability and oxidation resistivity of the maze-like BNNWs are higher than for the wavy nanowalls.The structure and oxidation of the nanowalls was found to be the critical factor for their thermal stability and con trolled luminescence properties.Cytotoxic study dem on strated sign ificant antibacterial effect of both maze-like and wavy h-BN nanowalls against E.coli.The reported results reveal a significant potential of h-BN nanowalls for a broad range of applications from electronics to biomedicine. 展开更多
关键词 BORON NITRIDE NANOSHEETS nanowalls chemical vapor deposition CYTOTOXICITY light emission thermal stability
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