欢迎登录材料期刊网

材料期刊网

高级检索

低维化和纳米化实现电、声输运特性的协同调控从而优化热电性能是当前热电材料领域的一个重要研究方向.通过外混、原位复合等方式引入的纳米颗粒能散射具有中长波波长的声子从而降低材料的品格热导率,同时纳米化有助于载流子在费米能级附近态密度的提高,纳米颗粒构成的界面所产生的界面势垒能有效过滤低能量载流子,从而增大赛贝克系数.纳米颗粒的含量、分散状态以及颗粒本征性质是设计高性能纳米复合热电材料的关键.对于不同材料体系,外部混合、原位氧化、分相析出等制备方法为实现微结构控制提供了可能.本文以几个典型材料体系为例介绍微结构调控提高材料热电性能的研究进展,并讨论微结构调控对电、声输运的影响机制.

参考文献

[1] Ioffe A F.Goldsmid H J,ed.Semiconductor Thermoelements and Thermoelectric Cooling.London:Inforesearch,1957:72.
[2] Slack G A.Rowe D M,ed.CRC Handbook of Thermoelectrics.Boca Raton:CRC Press,1995,chap.34,40.
[3] Hicks L D,Dresselhaus M S.Effect of quantum-well structures on the thermoelectric figure of merit.Phys.Rev.B,1993,47(19):12727-12731.
[4] Hicks L D,Dresselhaus M S.Thermoelectric figure of merit of a one-dimensional conductor.Phys.Rev.B,1993,47(24):16631-16634.
[5] Hicks L D,Harman T C,Sun X,et al.Experimental study of the effect of quantum-well structures on the thermoelectric figure of merit.Phys.Rev.B,1996,53(16):R10493-R10496.
[6] Wu Y,Fan R,Yang P.Block-by-block growth of single-crystalline Si/SiGe superlattice nanowires.Nano Lett.,2002,2(2):83-86.
[7] Yang R,Chen G,Dresselhaus M S.Thermal conductivity of simple and tubular nanowire composites in the longitudinal direction.Phys.Rev.B,2005,72(12):125418-1-7.
[8] Hochbaum A I,Chen R,Delgado R D,et al.Enhanced thermoelectric performance of rough silicon nanowires.Nature,2008,451(7175):163-167.
[9] Yang R,Chen G,Dresselhaus M S.Thermal conductivity modeling of core-shell and tubular nanowires.Nano Lett.,2005,5(6):1111-1115.
[10] Wang W,Zhang G,Li X.Manipulating growth of thermoelectric Bi2Te3/Sb multilayered nanowire arrays.J.Phys.Chem.C,2008,112(39):15190-15194.
[11] Yoo B,Xiao F,Bozhilov K N,et al.Electrodeposition of thermoelectric superlattice nanowires.Adv.Mater.,2007,19(2):296-299.
[12] Trahey L,Becker C R,Stacy A M.Electrodeposited bismuth telluride nanowire arrays with uniform growth fronts.Nano Lett.,2007,7(8):2535-2539.
[13] Bj(o)rk M T,Ohlsson B J,Sass T,et al.One-dimensional steeplechase for electrons realized.Nano Lett.,2002,2(2):87-89.
[14] Cho S,Kim Y,Youn S J,et al.Artificially ordered Bi/Sb superlattice alloys:fabrication and transport properties.Pins.Rev.B,2001,64(23):235330-1-4.
[15] Kwon S D,Ju B K,Yoon S J,et al.Fabrication of bismuth telluride-based alloy thin film thermoelectric devices grown by metal organic chemical vapor deposition.J.Electron.Mater.,2009,38(7):920-924.
[16] Faraji L S,Singh R P,Allahkarami M.Pulsed laser deposition of bismuth telluride thin film and annealing effects.Eur.Phys.J.Appl.Phys.,2009,46(2):20501-1-5.
[17] Venkatasubramanian R,Siivola E,Colpitts T,et al.Thin-film thermoelectric devices with high room-temperature figures of merit.Nature,2001,413(6856):597-602.
[18] Caylor J C,Coonley K,Stuart J,et al.Enhanced thermoelectric performance in PbTe-based superlattice structures from reduction of lattice thermal conductivity.Appl.Phys.Lett.,2005,87(2):023105-1-3.
[19] Beyer H,Nurnus J,B(o)tner H,et al.High thermoelectric figure of merit ZT in PbTe and Bi2Te3-based superlattices by a reduction of the thermal conductivity.Phys.E,2002,13(2/3/4):965-968.
[20] Harman T C,Taylor P J,Walsh M P,et al.Quantum dot superlattice thermoelectric materials and devices.Science,2002,297(5590):2229-2232.
[21] Koh Y K,Vineis C J,Calawa S D,et al.Lattice thermal conductivity of nanostructured thermoelectric materials based on PbTe.Appl.Phys.Lett.,2009,94(15):153101-1-3.
[22] Uchino H,Okamoto Y,Kawahara T,et al.The study of the origin of the anomalously large thermoelectric power of Si/Ge superlattice thin film.Jpn.J.Appl.Phys.,2000,39(4A):1675-1677.
[23] Walther M,Cooke D G,Sherstan C,et al.Terahertz conductivity of thin gold films at the metal-insulator percolation transition.Phys.Rev.B,2007,76(12):125408-1-9.
[24] Burkov A T,Heinrich A,Gladun C,et al.Effect of interphase boundaries on resistivity and thermopower of nanocrystalline Re-Si thin film composites.Phys.Rev.B,1998,58(15):9644-9647.
[25] Liufu S C,Chen L D,Yao Q,et al.Assembly of one-dimensional nanorods into Bi2S3 films with enhanced thermoelectric transport properties.Appl.Phys.Lett.,2007,90(11):112106-1-3.
[26] Kim I H.(Bi,Sb)2(Te,Se)3-based thin film thermoelectric generators.Mater.Lett.,2000,43(5/6):221-224.
[27] Goldsmid H J.Rowe D M,ed.CRC Handbook of Thermoelectrics.Boca Raton:CRC Press,1995
[28] Li H,Tang X,Zhang Q,et al.High performance InxCeyCo4Sb12 thermoelectric materials with in situ forming nanostructured InSb phase.Appl.Phys.Lett.,2009,94(10):102114-1-3.
[29] Ma Y,Hao Q,Poudel B,et al.Enhanced thermoelectric figure-of-merit in p-type nanostructured bismuth antimony tellurium alloys made from elemental chunks.Nano Lett.,2008,8(8):2580-2584.
[30] Heremans J P,Jovovic V,Toberer E S,et al.Enhancement of thermoelectric efficiency in PbTe by distortion of the electronic density of states.Science,2008,321(5888):554-557.
[31] Heremans J P,Thrush C M,Morelli D T.Thermopower enhancement in lead telluride nanostructures.Phys.Rev.B,2004,70(11):115334-1-5.
[32] Lu W,Fang J,Stokes K L,et al.Shape evolution and self assembly of monodisperse PbTe nanocrystals.J.Am.Chem.Soc.,2004,126(38):11798-11799.
[33] Lu W,Ding Y,Chen Y,et al.Bismuth telluride hexagonal nanoplatelets and their two-step epitaxial growth.J.Am.Chem.Soc.,2005,127(28):10112-10116.
[34] Shi W D,Zhou L,Song S,et al.Hydrothermal synthesis and thermoelectric transport properties of impurity-free antimony telluride hexagonal nanoplates.Adv.Mater.,2008,20(10):1892-1897.
[35] Garje S S,Eisler D J,Ritch J S,et al.A new route to antimony telluride nanoplates from a single-source precursor.J.Am.Chem.Soc.,2006,128(10):3120-3121.
[36] Chu Y,Tang X F,Zhao W Y,et al.Synthesis and growth of rodlike and spherical nanostructures CoSb3 via ethanol Sol-Gel method.Cryst.Growth & Des.,2008,8(1):208-210.
[37] 禇颖,唐新峰,万玲,等(CHU Ying,et al.)交叉共沉淀法制备Skutterudite纳米粉体的研究.无机材料学报(Journal of Inorganic Materials),2006,21(2):298-302.
[38] Toprak M S,Stiewe C,Platzek D,et al.The impact of nanostructuring on the thermal conductivity of thermoelectric CoSb3.Adv.Fund.Mater.,2004,14(12):1189-1196.
[39] Martin J,Wang L,Chen L,et al.Enhanced Seebeck coefficient through energy-barrier scattering in PbTe nanocomposites.Phys.Rev.B,2009,79(11):115311-1-5.
[40] Poudel B,Hao Q,Ma Y,et al.High-thermoelectric performance of nanostructured bismuth antimony telluride bulk alloys.Science,2008,320(5876):634-638.
[41] Joshi G,Lee H,Lan Y,et al.Enhanced thermoelectric figure-of-merit in nanostructured p-type silicon germanium bulk alloys.Nano Lett.,2008,8(12):4670-4674.
[42] Yang J,Hao Q,Wang H,et al.Solubility study of Yb in n-type skutterudites YbxCo4Sb12 and their enhanced thermoelectric properties.Phys.Rev.B,2009,80(11):115329-1-5.
[43] Bao S,Yang J,Peng J,et al.Preparation and thermoelectric properties of LaxFeCo3Sb12 skutterudites by mechanical alloying and hot pressing.J.Alloys Compd.,2006,421(1/2):105-108.
[44] Tang X,Xie W,Li H,et al.Preparation and thermoelectric transport properties of high-performance p-type Bi2Te3 with layered nanostructure.Appl.Phys.Lett.,2007,90(1):012102-1-3.
[45] Xie W,Tang X,Yan Y,et al.Unique nanostructures and enhanced thermoelectric performance of melt-spun BiSbTe alloys.Appl.Phys.Lett.,2009,94(10):102111-1-3.
[46] Xie W,Tang X,Yan Y,et al.High thermoelectric performance BiSbTe alloy with unique low-dimensional structure.J.Appl.Phys.,2009,105(11):113713-1-8.
[47] Ebling D G,Jacquot A,J(a)gle M,et al.Structure and thermoelectric properties of nanocomposite bismuth telluride prepared by melt spinning or by partially alloying with IV-VI compounds.Phy.Stat.Sol.(RRL),2007,1(6):238-240.
[48] Hsu K F,Loo S,Guo F,et al.Cubic AgPbmSbTe2+m:bulk thermoelectric materials with high figure of merit.Science,2004,303(5659):818-821.
[49] Arachchige I U,Wu J,Dravid V P,et al.Nanocrystals of the quaternary thermoelectric materials:AgPbmSbTem+2 (m=l-18):phase-segregated or solid solutions? Adv.Mater.,2008,20(19):3638-3642.
[50] Chen N,Gascois F,Snyder G J,et al.Macroscopic thermoelectric inhomogeneities in (AgSbTezWPbTe)1-x.Appl.Phys.Lett.,2005,87(17):171903-1-3.
[51] Ke X,Chen C,Yang J,et al.Microstructure and a nucleation mechanism for nanoprecipitates in PbTe-AgSbTe2.Phys.Rev.Lett.,2009,103(14):145502-1-4.
[52] Zhou M,Li J F,Kita T.Nanostructured AgPbmSbTem+2 system bulk materials with enhanced thermoelectric performance.J.Am.Chem.Soc.,2008,130(13):4527-4532.
[53] Poudeu P F P,Angelo J D,Downey A D,et al.High thermoelectric figure of merit and nanostructuring in bulk p-type Na1-xPbmSbyTem+2.Angew.Chem.Int.Edit.,2006,45(23):3835-3839.
[54] Ikeda T,Collins L A,Ravi V A,et al.Self-assembled nanometer lamellae of thermoelectric PbTe and Sb2Te3 with epitaxy-like interfaces.Chem.Mater.,2007,19(4):763-767.
[55] Ikeda T,Haile S M,Ravi V A,et al.Solidification processing of alloys in the pseudo-binary PbTe-Sb2Te3 system.Acta Mater.,2007,55(4):1227-1239.
[56] Ikeda T,Toberer E S,Ravi V A,et al.In situ observation of eutectoid reaction forming a PbTe-Sb2Te3 thermoelectric nanocomposite by synchrotron X-ray diffraction.Scripta Mater,2009,60(5):321-324.
[57] Cao Y Q,Zhao X B,Zhu T J,et al.Syntheses and thermoelectric properties of Bi2Te3/Sb2Te3 bulk nanocomposites with laminated nanostructure.Appl.Phys.Lett.,2008,92(14):143106-1-3.
[58] Androulakis J,Lin C H,Kong H J,et al.Spinodal decomposition and nucleation and growth as a means to bulk nanostructured thermoelectrics:enhanced performance in Pb1-xSnxTe-PbS.J.Am.Chem.Soc,2007,129(31):9780-9788.
[59] Shi X,Chen L,Yang J,et al.Enhanced thermoelectric figure of merit of CoSb3 via large-defect scattering.Appl.Phys.Lett.,2004,84(13):2301-2303.
[60] Katsuyama S,Watanabe M,Kuroki M,et al.Effect of NiSb on the thermoelectric properties of skutterudite CoSb3.J.Appl.Phys.,2003,93(5):2758-2764.
[61] Katsuyama S,Kanayama Y,Ito M,et al.Thermoelectric properties of CoSb3 with dispersed FeSb2 particles.J.Appl.Phys.,2000,88(6):3484-3489.
[62] He Z,Stiewe C,Platzek D,et al.Nano ZrO2/CoSb3 composites with improved thermoelectric figure of merit Nanotechnology,2007,18(23):235602-1-5.
[63] He Z,Stiewe C,Platzek D,et al.Effect of ceramic dispersion on thermoelectric properties of nano-ZrO2CoSb3 composites.J.Appl.Phys.,2007,101(4):043707-1-7.
[64] Katsuyama S,Okada H,Miyajima K.Thermoelectric properties of CeFe3CoSb12-MoO2 composite.Mater.Trans.,2008,49(8):1731-1736.
[65] Shi X,Chen L D,Bai S Q,et al.Influence of fullerene dispersion on high temperature thermoelectric properties of BayCo4Sb12-based composites.J.Appl.Phys.,2007,102(10):103709-1-7.
[66] Xiong Z,Chen X,Zhao X,et al.Effects of nano-TiO2 dispersion on the thermoelectric properties offillcd-skutterudite Ba0.22Co4Sb12.Solid State Sci.,2009,11(9):1612-1616.
[67] Mi J L,Zhao X B,Zhu T J,et al.Improved thermoelectric figure of merit in n-type CoSb3 based nanocomposites.Appl.Phys.Lett.,2007,91(17):172116-1-3.
[68] Mi J L,Zhao X B,Zhu T J,et al.Solvothermal synthesis and electrical transport properties of skutterudite CoSb3.J.Alloys Comps.,2006,417(1/2):269-272.
[69] Alboni P N,Ji X,He J,et al.Thermoelectric properties of La0.9CoFe3Sb12-CoSb3 skutterudite nanocomposites.J.Appl.Phys.,2008,103(11):113707-1-5.
[70] Zhao X Y,Shi X,Chen L D,et al.Synthesis of YbyCo4Sb12/Yb2O3 composites and their thermoelectric properties.Appl.Phys.Lett.,2006,89(9):092121-1-3.
[71] Xiong Z,Huang X,Chen X,et al.Realizing phase segregation in the Ba0.2(Co1-xIrx)4Sb12 (x=0,0.1,0.2) filled skutterudite system.Scripta Mater.,2010,62(2):93-96.
[72] Li H,Tang X,Su X,et al.Preparation and thermoelectric properties of high-performance Sb additional Yb0.2Co4Sb12+y.bulk materials with nanostructure.Appl.Phys.Lett.,2008,92(20):202114-1-3.
[73] Wu T,Jiang W,Li X,et al.Thermoelectric properties of p-type Fe-doped TiCoSb half-Heusler compounds.J.Appl.Phys.,2007,102(10):103705-1-5.
[74] Nolas G S,Kaeser M,Littleton IV R T,et al.High figure of merit in partially filled ytterbium skutterudite materials.Appl.Phys.Lett.,2000,77(12):1855-1857.
[75] Shi X,Zhang W,Chen L D,et al.Phase-diagram-related problems in thermoelectric materials:skutterudites as an example.Int.J.Mat.Res.,2008,99(3):638-643.
[76] Uher C,Shi X,Kong H J.Filled IrxCo1-xSb3-based Skutterudite Solid Solutions.Proc.25th Int.Conf.on Thermoelectrics,2007,doi:10.1109/ICT.2007.4569455.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%