Security and Disruptive Technologies Portfolio, Emerging Technologies Division, National Research Council Canada , Ottawa, Ontario K1A 0R6, Canada.
ACS Nano. 2015 Dec 22;9(12):12573-82. doi: 10.1021/acsnano.5b06523. Epub 2015 Nov 23.
Boron nitride nanotubes (BNNTs) exhibit a range of properties that hold great potential for many fields of science and technology; however, they have inherently low chemical reactivity, making functionalization for specific applications difficult. Here we propose that covalent functionalization of BNNTs via reduction chemistry could be a highly promising and viable strategy. Through density functional theory calculations of the electron affinity of BNNTs and their binding energies with various radicals, we reveal that their chemical reactivity can be significantly enhanced via reducing the nanotubes (i.e., negatively charging). For example, a 5.5-fold enhancement in reactivity of reduced BNNTs toward NH2 radicals was predicted relative to their neutral counterparts. The localization characteristics of the BNNT π electron system lead the excess electrons to fill the empty p orbitals of boron sites, which promote covalent bond formation with an unpaired electron from a radical molecule. In support of our theoretical findings, we also experimentally investigated the covalent alkylation of BNNTs via reduction chemistry using 1-bromohexane. The thermogravimetric measurements showed a considerable weight loss (12-14%) only for samples alkylated using reduced BNNTs, suggesting their significantly improved reactivity over neutral BNNTs. This finding will provide an insight in developing an effective route to chemical functionalization of BNNTs.
氮化硼纳米管(BNNTs)具有多种性能,在许多科学和技术领域都有很大的应用潜力;然而,它们本身的化学活性较低,使得针对特定应用的功能化变得困难。在这里,我们提出 BNNTs 的共价功能化可以通过还原化学来实现,这是一种极具前景和可行的策略。通过 BNNTs 的电子亲和能和与各种自由基结合能的密度泛函理论计算,我们揭示了通过还原(即带负电荷)可以显著增强其化学活性。例如,与中性 BNNTs 相比,还原 BNNTs 对 NH2 自由基的反应性增强了 5.5 倍。BNNT π 电子体系的局域特性使得多余的电子填充硼位的空 p 轨道,从而促进与自由基分子中的不成对电子形成共价键。为了支持我们的理论发现,我们还通过使用 1-溴己烷的还原化学实验研究了 BNNTs 的共价烷基化。热重测量仅显示出用还原 BNNTs 烷基化的样品有相当大的重量损失(12-14%),这表明它们的反应性明显优于中性 BNNTs。这一发现将为 BNNTs 的化学功能化开发提供有效的途径。