Modeling polydispersive ensembles of diamond nanoparticles

被引:22
作者
Barnard, Amanda S. [1 ]
机构
[1] CSIRO Mat Sci & Engn, Parkville, Vic 3052, Australia
基金
澳大利亚研究理事会;
关键词
SUBSTITUTIONAL NITROGEN; DETONATION NANODIAMOND; MEDIATED DELIVERY; DEFECT CENTERS; VACANCY; SURFACE; SIZE; NANOCRYSTALLINE; IDENTIFICATION; PERSPECTIVES;
D O I
10.1088/0957-4484/24/8/085703
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
While significant progress has been made toward production of monodispersed samples of a variety of nanoparticles, in cases such as diamond nanoparticles (nanodiamonds) a significant degree of polydispersivity persists, so scaling-up of laboratory applications to industrial levels has its challenges. In many cases, however, monodispersivity is not essential for reliable application, provided that the inevitable uncertainties are just as predictable as the functional properties. As computational methods of materials design are becoming more widespread, there is a growing need for robust methods for modeling ensembles of nanoparticles, that capture the structural complexity characteristic of real specimens. In this paper we present a simple statistical approach to modeling of ensembles of nanoparticles, and apply it to nanodiamond, based on sets of individual simulations that have been carefully selected to describe specific structural sources that are responsible for scattering of fundamental properties, and that are typically difficult to eliminate experimentally. For the purposes of demonstration we show how scattering in the Fermi energy and the electronic band gap are related to different structural variations (sources), and how these results can be combined strategically to yield statistically significant predictions of the properties of an entire ensemble of nanodiamonds, rather than merely one individual 'model' particle or a non-representative sub-set.
引用
收藏
页数:14
相关论文
共 61 条
[1]   Structural, optical, and electronic properties of nanocrystalline and ultrananocrystalline diamond thin films [J].
Achatz, P. ;
Garrido, J. A. ;
Williams, O. A. ;
Brun, P. ;
Gruen, D. M. ;
Kromka, A. ;
Steinmueller, D. ;
Stutzmann, M. .
PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2007, 204 (09) :2874-2880
[2]   Bacteria-mediated delivery of nanoparticles and cargo into cells [J].
Akin, Demir ;
Sturgis, Jennifer ;
Ragheb, Kathy ;
Sherman, Debby ;
Burkholder, Kristin ;
Robinson, J. Paul ;
Bhunia, Arun K. ;
Mohammed, Sulma ;
Bashir, Rashid .
NATURE NANOTECHNOLOGY, 2007, 2 (07) :441-449
[3]   Optical properties of nanodiamond layers [J].
Aleksenskii, AE ;
Osipov, VY ;
Vul', AY ;
Ber, BY ;
Smirnov, AB ;
Melekhin, VG ;
Adriaenssens, GJ ;
Iakoubovskii, K .
PHYSICS OF THE SOLID STATE, 2001, 43 (01) :145-150
[4]  
[Anonymous], NANODIAMONDS APPL BI
[5]   Surface chemical modifications and surface reactivity of nanodiamonds hydrogenated by CVD plasma [J].
Arnault, Jean-Charles ;
Petit, Tristan ;
Girard, Hugues ;
Chavanne, Anthony ;
Gesset, Celine ;
Sennour, Mohamed ;
Chaigneau, Marc .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (24) :11481-11487
[6]   DEFECTS IN DIAMOND - THE UNRELAXED VACANCY AND SUBSTITUTIONAL NITROGEN [J].
BACHELET, GB ;
BARAFF, GA ;
SCHLUTER, M .
PHYSICAL REVIEW B, 1981, 24 (08) :4736-4744
[7]   Modelling of nanoparticles: approaches to morphology and evolution [J].
Barnard, A. S. .
REPORTS ON PROGRESS IN PHYSICS, 2010, 73 (08)
[8]   Vacancy Induced Structural Changes in Diamond Nanoparticles [J].
Barnard, A. S. ;
Sternberg, M. .
JOURNAL OF COMPUTATIONAL AND THEORETICAL NANOSCIENCE, 2008, 5 (11) :2089-2095
[9]   Predicting the distribution and stability of photoactive defect centers in nanodiamond biomarkers [J].
Barnard, A. S. ;
Vlasov, I. I. ;
Ralchenko, V. G. .
JOURNAL OF MATERIALS CHEMISTRY, 2009, 19 (03) :360-365
[10]   Crystallinity and surface electrostatics of diamond nanocrystals [J].
Barnard, Amanda S. ;
Sternberg, Michael .
JOURNAL OF MATERIALS CHEMISTRY, 2007, 17 (45) :4811-4819