Thermal conductivity of core-shell nanostructures: From nanowires to nanocomposites

被引:2
作者
Yang, Ronggui [1 ]
Chen, Gang [1 ]
Dresselhaus, Mildred S. [1 ]
机构
[1] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
来源
HT2005: PROCEEDINGS OF THE ASME SUMMER HEAT TRANSFER CONFERENCE 2005, VOL 4 | 2005年
关键词
phonon transport; Boltzmann equation; thermal conductivity; core-shell; nanowire; nanocomposites; nanoporous material; superlattices; thermoelectrics;
D O I
10.1115/HT2005-72198
中图分类号
O414.1 [热力学];
学科分类号
摘要
Core-shell heterostructures could potentially become the building blocks of nanotechnology for electronic and optoelectronic applications. The increased surface or interface area will decrease the thermal conductivity of such nanostructures and impose challenges for the thermal management such devices. In the mean time, the decreased thermal conductivity might benefit the thermoelectric conversion efficiency. In this paper, a generic model is established to study phonon transport in core-shell nanowire structures in the longitudinal direction using the phonon Boltzmann equation. The model can be used to simulate a variety of nanostructures, including nanowires and nanocomposites by changing some of the input parameters. We first report the dependence of the thermal conductivity on the surface conditions and the core-shell geometry for silicon core germanium shell and tubular silicon nanowires. When the scattering at the outer shell surface in the generic model is assumed to be totally specular, the core-shell nanostructure resembles a simulation unit cell of periodic two-dimensional (2D) nanocomposites. Thermal conductivity of nanowire composites and cylindrical nanoporous material in longitudinal direction is thus predicted as a function of the size of the nanowires and nanopores, and the volumetric fraction of the constituent materials. Results of this study can be used to direct the development of high efficiency thermoelectric materials.
引用
收藏
页码:895 / 901
页数:7
相关论文
共 31 条
[1]   ON THE EFFECTIVE THERMAL-CONDUCTIVITY OF COATED SHORT-FIBER COMPOSITES [J].
BENVENISTE, Y ;
MILOH, T .
JOURNAL OF APPLIED PHYSICS, 1991, 69 (03) :1337-1344
[2]   Nanoscale thermal transport [J].
Cahill, DG ;
Ford, WK ;
Goodson, KE ;
Mahan, GD ;
Majumdar, A ;
Maris, HJ ;
Merlin, R ;
Phillpot, SR .
JOURNAL OF APPLIED PHYSICS, 2003, 93 (02) :793-818
[3]   Size and interface effects on thermal conductivity of superlattices and periodic thin-film structures [J].
Chen, G .
JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1997, 119 (02) :220-229
[4]   THERMAL-CONDUCTIVITIES OF QUANTUM-WELL STRUCTURES [J].
CHEN, G ;
TIEN, CL .
JOURNAL OF THERMOPHYSICS AND HEAT TRANSFER, 1993, 7 (02) :311-318
[5]   Thermal conductivity and ballistic-phonon transport in the cross-plane direction of superlattices [J].
Chen, G .
PHYSICAL REVIEW B, 1998, 57 (23) :14958-14973
[6]  
CHEN G, 2004, ENCY NANOSCIENCE NAN, V7, P429
[7]   Theoretical phonon thermal conductivity of Si/Ge superlattice nanowires [J].
Dames, C ;
Chen, G .
JOURNAL OF APPLIED PHYSICS, 2004, 95 (02) :682-693
[8]  
Fay J. A., 1994, Introduction to Fluid Mechanics
[9]  
GREENSPAN H, 1967, COMPUTING METHODS RE
[10]   EFFECTIVE THERMAL-CONDUCTIVITY OF COMPOSITES WITH INTERFACIAL THERMAL BARRIER RESISTANCE [J].
HASSELMAN, DPH ;
JOHNSON, LF .
JOURNAL OF COMPOSITE MATERIALS, 1987, 21 (06) :508-515