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功能化六方氮化硼纳米片的力学和机电性能:密度泛函理论研究。

Mechanical and electromechanical properties of functionalized hexagonal boron nitride nanosheet: A density functional theory study.

机构信息

Department of Civil Engineering, Iran University of Science and Technology, Tehran, Iran.

Department of Civil Engineering, Monash University, Melbourne, VIC 3800, Australia.

出版信息

J Chem Phys. 2018 Sep 21;149(11):114701. doi: 10.1063/1.5043252.

Abstract

Hydroxylation as a technique is mainly used to alter the chemical characteristics of hexagonal boron nitride (h-BN), affecting physical features as well as mechanical and electromechanical properties in the process, the extent of which remains unknown. In this study, effects of functionalization on the physical, mechanical, and electromechanical properties of h-BN, including the interlayer distance, Young's modulus, intrinsic strength, and bandgaps were investigated based on density functional theory. It was found that functionalized layers of h-BN have an average distance of about 5.48 Å. Analyzing mechanical properties of h-BN revealed great dependence on the degree of functionalization. For the amorphous hydroxylated hexagonal boron nitride nanosheets (OH-BNNS), the Young's modulus moves from 436 to 284 GPa as the coverage of -OH increases. The corresponding variations in the Young's modulus of the ordered OH-BNNS with analogous coverage are bigger at 460-290 GPa. The observed intrinsic strength suggested that mechanical properties are promising even after functionalization. Moreover, the resulted bandgap reduction drastically enhanced the electrical conductivity of this structure under imposed strains. The results from this work pave the way for future endeavors in h-BN nanocomposites research.

摘要

羟化作用作为一种技术,主要用于改变六方氮化硼(h-BN)的化学特性,在这一过程中影响物理特性以及机械和机电性能,但其影响程度尚不清楚。在这项研究中,基于密度泛函理论,研究了功能化对 h-BN 的物理、机械和机电性能的影响,包括层间距离、杨氏模量、内在强度和带隙。研究发现,功能化的 h-BN 层的平均距离约为 5.48Å。分析 h-BN 的机械性能表明,其对功能化程度有很大的依赖性。对于非晶态羟基化六方氮化硼纳米片(OH-BNNS),随着-OH 覆盖率的增加,杨氏模量从 436 GPa 变为 284 GPa。具有类似覆盖率的有序 OH-BNNS 的杨氏模量的相应变化更大,在 460-290 GPa 之间。观察到的内在强度表明,即使经过功能化,机械性能也很有前景。此外,所得带隙减小极大地提高了该结构在施加应变下的电导率。这项工作为 h-BN 纳米复合材料研究的未来努力铺平了道路。

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