Nanoscale thermal transport. II. 2003-2012

被引:1388
作者
Cahill, David G. [1 ,2 ]
Braun, Paul V. [1 ,2 ]
Chen, Gang [3 ]
Clarke, David R. [4 ]
Fan, Shanhui [5 ]
Goodson, Kenneth E. [6 ]
Keblinski, Pawel [7 ]
King, William P. [8 ]
Mahan, Gerald D. [9 ]
Majumdar, Arun [10 ]
Maris, Humphrey J. [11 ]
Phillpot, Simon R. [12 ]
Pop, Eric [13 ]
Shi, Li [14 ]
机构
[1] Univ Illinois, Dept Mat Sci & Engn, Urbana, IL 61801 USA
[2] Univ Illinois, Frederick Seitz Mat Res Lab, Urbana, IL 61801 USA
[3] MIT, Dept Mech Engn, Cambridge, MA 02139 USA
[4] Harvard Univ, Sch Engn & Appl Sci, Cambridge, MA 02138 USA
[5] Stanford Univ, Dept Elect Engn, Stanford, CA 94305 USA
[6] Stanford Univ, Dept Mech Engn, Stanford, CA 94305 USA
[7] Rensselaer Polytech Inst, Dept Mat Sci & Engn, Troy, NY 12180 USA
[8] Univ Illinois, Dept Mech Sci & Engn, Urbana, IL 61801 USA
[9] Penn State Univ, Dept Phys, University Pk, PA 16802 USA
[10] Univ Calif Berkeley, Dept Mech Engn, Berkeley, CA 94720 USA
[11] Brown Univ, Dept Phys, Providence, RI 02912 USA
[12] Univ Florida, Dept Mat Sci & Engn, Gainseville, FL 32611 USA
[13] Univ Illinois, Dept Elect & Comp Engn, Urbana, IL 61801 USA
[14] Univ Texas Austin, Dept Mech Engn, Austin, TX 78712 USA
基金
美国国家科学基金会;
关键词
RADIATIVE HEAT-TRANSFER; PHASE-CHANGE MEMORY; BOUNDARY RESISTANCE; MOLECULAR-DYNAMICS; SPONTANEOUS DECAY; BARRIER COATINGS; NANOSTRUCTURED THERMOELECTRICS; ELECTRONIC-PROPERTIES; KAPITZA CONDUCTANCE; PHONON-DISPERSION;
D O I
10.1063/1.4832615
中图分类号
O59 [应用物理学];
学科分类号
摘要
A diverse spectrum of technology drivers such as improved thermal barriers, higher efficiency thermoelectric energy conversion, phase-change memory, heat-assisted magnetic recording, thermal management of nanoscale electronics, and nanoparticles for thermal medical therapies are motivating studies of the applied physics of thermal transport at the nanoscale. This review emphasizes developments in experiment, theory, and computation in the past ten years and summarizes the present status of the field. Interfaces become increasingly important on small length scales. Research during the past decade has extended studies of interfaces between simple metals and inorganic crystals to interfaces with molecular materials and liquids with systematic control of interface chemistry and physics. At separations on the order of similar to 1 nm, the science of radiative transport through nanoscale gaps overlaps with thermal conduction by the coupling of electronic and vibrational excitations across weakly bonded or rough interfaces between materials. Major advances in the physics of phonons include first principles calculation of the phonon lifetimes of simple crystals and application of the predicted scattering rates in parameter-free calculations of the thermal conductivity. Progress in the control of thermal transport at the nanoscale is critical to continued advances in the density of information that can be stored in phase change memory devices and new generations of magnetic storage that will use highly localized heat sources to reduce the coercivity of magnetic media. Ultralow thermal conductivity-thermal conductivity below the conventionally predicted minimum thermal conductivity-has been observed in nanolaminates and disordered crystals with strong anisotropy. Advances in metrology by time-domain thermoreflectance have made measurements of the thermal conductivity of a thin layer with micron-scale spatial resolution relatively routine. Scanning thermal microscopy and thermal analysis using proximal probes has achieved spatial resolution of 10 nm, temperature precision of 50 mK, sensitivity to heat flows of 10 pW, and the capability for thermal analysis of sub-femtogram samples. (C) 2014 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution 3.0 Unported License.
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页数:45
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