Simulations of the synthesis of boron-nitride nanostructures in a hot, high pressure gas volume

被引:29
作者
Krstic, Predrag S. [1 ,2 ]
Han, Longtao [1 ,2 ]
Irle, Stephan [3 ]
Nakai, Hiromi [4 ,5 ]
机构
[1] SUNY Stony Brook, Inst Adv Computat Sci, Stony Brook, NY 11794 USA
[2] SUNY Stony Brook, Dept Mat Sci & Chem Engn, Stony Brook, NY 11794 USA
[3] Oak Ridge Natl Lab, Computat Sci & Engn Div, Oak Ridge, TN 37831 USA
[4] Waseda Univ, Sch Adv Sci & Engn, Dept Chem & Biochem, Tokyo 1698555, Japan
[5] Waseda Univ, Waseda Res Inst Sci & Engn, Tokyo 1698555, Japan
关键词
MOLECULAR-DYNAMICS SIMULATIONS; QM/MD SIMULATIONS; CARBON NANOTUBES; HIGH-TEMPERATURE; GROWTH; MECHANISM; HYDROGEN; NANOMATERIALS; BN;
D O I
10.1039/c8sc00667a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We performed nanosecond timescale computer simulations of clusterization and agglomeration processes of boron nitride (BN) nanostructures in hot, high pressure gas, starting from eleven different atomic and molecular precursor systems containing boron, nitrogen and hydrogen at various temperatures from 1500 to 6000 K. The synthesized BN nanostructures self-assemble in the form of cages, flakes, and tubes as well as amorphous structures. The simulations facilitate the analysis of chemical dynamics and we are able to predict the optimal conditions concerning temperature and chemical precursor composition for controlling the synthesis process in a high temperature gas volume, at high pressure. We identify the optimal precursor/temperature choices that lead to the nanostructures of highest quality with the highest rate of synthesis, using a novel parameter of the quality of the synthesis (PQS). Two distinct mechanisms of BN nanotube growth were found, neither of them based on the root-growth process. The simulations were performed using quantum-classical molecular dynamics (QCMD) based on the density-functional tight-binding (DFTB) quantum mechanics in conjunction with a divide-and-conquer (DC) linear scaling algorithm, as implemented in the DC-DFTB-K code, enabling the study of systems as large as 1300 atoms in canonical NVT ensembles for 1 ns time.
引用
收藏
页码:3803 / 3819
页数:17
相关论文
共 48 条
[31]   Three pillars for achieving quantum mechanical molecular dynamics simulations of huge systems: Divide-and-conquer, density-functional tight-binding, and massively parallel computation [J].
Nishizawa, Hiroaki ;
Nishimura, Yoshifumi ;
Kobayashi, Masato ;
Irle, Stephan ;
Nakai, Hiromi .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2016, 37 (21) :1983-1992
[32]   Possible Mechanism of BN Fullerene Formation from a Boron Cluster: Density-Functional Tight-Binding Molecular Dynamics Simulations [J].
Ohta, Y. .
JOURNAL OF COMPUTATIONAL CHEMISTRY, 2016, 37 (10) :886-895
[33]   Insights into carbon nanotube and graphene formation mechanisms from molecular simulations: a review [J].
Page, A. J. ;
Ding, F. ;
Irle, S. ;
Morokuma, K. .
REPORTS ON PROGRESS IN PHYSICS, 2015, 78 (03)
[34]   Effects of Molecular Dynamics Thermostats on Descriptions of Chemical Nonequilibrium [J].
Page, Alister J. ;
Isomoto, Tetsushi ;
Knaup, Jan M. ;
Irle, Stephan ;
Morokuma, Keiji .
JOURNAL OF CHEMICAL THEORY AND COMPUTATION, 2012, 8 (11) :4019-4028
[35]   QM/MD Simulation of SWNT Nucleation on Transition-Metal Carbide Nanoparticles [J].
Page, Alister J. ;
Yamane, Honami ;
Ohta, Yasuhito ;
Irle, Stephan ;
Morokuma, Keiji .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (44) :15699-15707
[36]  
Ponder J. W., 2004, TINKER SO WARE TOOLS
[37]   Formation mechanism of polycyclic aromatic hydrocarbons in benzene combustion: Quantum chemical molecular dynamics simulations [J].
Saha, Biswajit ;
Irle, Stephan ;
Morokuma, Keiji .
JOURNAL OF CHEMICAL PHYSICS, 2010, 132 (22)
[38]   Tight-binding density functional theory: An approximate Kohn-Sham DFT Scheme [J].
Seifert, G. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2007, 111 (26) :5609-5613
[39]   A novel precursor for synthesis of pure boron nitride nanotubes [J].
Tang, C ;
Bando, Y ;
Sato, T ;
Kurashima, K .
CHEMICAL COMMUNICATIONS, 2002, (12) :1290-1291
[40]   Catalysts for chirality selective synthesis of single-walled carbon nanotubes [J].
Wang, Hong ;
Yuan, Yang ;
Wei, Li ;
Goh, Kunli ;
Yu, Dingshan ;
Chen, Yuan .
CARBON, 2015, 81 :1-19