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Controlled Gas Exfoliation of Boron Nitride into Few-Layered Nanosheets

机译:氮化硼的受控气体剥落成几层纳米片

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The controlled exfoliation of hexagonal boron nitride (h-BN) into single- or few-layered nanosheets remains a grand challenge and becomes the bottleneck to essential studies and applications of h-BN. Here, we present an efficient strategy for the scalable synthesis of few-layered h-BN nanosheets (BNNS) using a novel gas exfoliation of bulk h-BN in liquid N-2 (L-N-2). The essence of this strategy lies in the combination of a high temperature triggered expansion of bulk h-BN and the cryogenic L-N-2 gasification to exfoliate the h-BN. The produced BNNS after ten cycles (BNNS-10) consisted primarily of fewer than five atomic layers with a high mass yield of 16-20%. N-2 sorption and desorption isotherms show that the BNNS-10 exhibited a much higher specific surface area of 278m(2)g(-1) than that of bulk BN (10m(2)g(-1)). Through the investigation of the exfoliated intermediates combined with a theoretical calculation, we found that the huge temperature variation initiates the expansion and curling of the bulk h-BN. Subseqently, the L-N-2 penetrates into the interlayers of h-BN along the curling edge, followed by an immediate drastic gasification of L-N-2, further peeling off h-BN. This novel gas exfoliation of high surface area BNNS not only opens up potential opportunities for wide applications, but also can be extended to produce other layered materials in high yields.
机译:将六方氮化硼(h-BN)剥离到单层或几层纳米片中仍然是一个严峻的挑战,并成为h-BN必要研究和应用的瓶颈。在这里,我们提出了一种有效的策略,用于在液态N-2(L-N-2)中使用大量h-BN的新型气体剥落技术,可扩展合成几层h-BN纳米片(BNNS)。该策略的本质在于高温触发的大量h-BN膨胀与低温L-N-2气化以剥落h-BN的结合。十个周期后生产的BNNS(BNNS-10)主要由少于五个原子层组成,具有16-20%的高产率。 N-2吸附和解吸等温线表明BNNS-10的比表面积(278m(2)g(-1))比散装的BN(10m(2)g(-1))高得多。通过对剥落的中间体的研究并结合理论计算,我们发现巨大的温度变化引发了块状h-BN的膨胀和卷曲。随后,L-N-2沿卷曲边缘渗入h-BN的中间层,然后立即剧烈气化L-N-2,进一步剥离h-BN。高表面积BNNS的这种新颖的气体剥离技术不仅为广泛的应用提供了潜在的机会,而且还可以扩展以高产率生产其他层状材料。

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