Core-shell nanostructures for better thermoelectrics

被引:16
|
作者
Mulla, Rafiq [1 ]
Dunnill, Charles W. [1 ]
机构
[1] Swansea Univ, Energy Safety Res Inst, Bay Campus,Fabian Way, Swansea SA1 8EN, W Glam, Wales
来源
MATERIALS ADVANCES | 2022年 / 3卷 / 01期
关键词
COLLOIDAL QUANTUM DOTS; N-TYPE; THERMAL-CONDUCTIVITY; CORE/SHELL NANOWIRES; TRANSPORT-PROPERTIES; COPPER SULFIDE; POWER FACTOR; PERFORMANCE; NANOCOMPOSITES; NANOPARTICLE;
D O I
10.1039/d1ma00955a
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Substantial attempts have been made in recent decades to enhance the thermoelectric performance and find new materials. The inherent complexity and strong correlation between the electronic and thermal parameters of the materials pose serious challenges to enhance their thermoelectric performance. Recent studies on "core-shell" nanostructures and their nanocomposites have indicated that the new strategy of creating such structurally engineered materials can help in several ways to achieve high thermoelectric performances by breaking the strongly coupled electronic and thermal parameters. Furthermore, the dependence of the Seebeck coefficient and electrical conductivity on the carrier concentrations can be altered through the core-shell structure induced energy filtering effects. This review focuses on the experimental evidence and theoretical predictions in the context of core-shell nanostructures and their composite thermoelectric materials. It also highlights the fabrication processes and concepts used to produce these novel core-shell nanostructures.
引用
收藏
页码:125 / 141
页数:17
相关论文
共 50 条
  • [1] Core-Shell nanostructures in electrocatalysis
    Wang, Lei
    Wang, Chao
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 254
  • [2] Core-shell nanostructures: Titanium on silica
    Zhou, Liang
    Ramirez-Huerta, Mayela
    Soucek, Mark D.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2007, 233
  • [3] Mechanical behavior of core-shell nanostructures
    Santhapuram, Raghuram R.
    Spearot, Douglas E.
    Nair, Arun K.
    [J]. JOURNAL OF MATERIALS SCIENCE, 2020, 55 (10) : 4303 - 4310
  • [4] Silica-metal core-shell nanostructures
    Jankiewicz, B. J.
    Jamiola, D.
    Choma, J.
    Jaroniec, M.
    [J]. ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2012, 170 (1-2) : 28 - 47
  • [5] Core-shell nanostructures for ultrasensitive detection of α-thrombin
    Chen, Xia
    Liu, Hongli
    Zhou, Xiaodong
    Hu, Jiming
    [J]. NANOSCALE, 2010, 2 (12) : 2841 - 2846
  • [6] Nanoengineering Liquid Metal Core-Shell Nanostructures
    Lu, Hongda
    Tang, Shi-Yang
    Zhu, Jiayuan
    Huang, Xumin
    Forgham, Helen
    Li, Xiangke
    Shen, Ao
    Yun, Guolin
    Hu, Jinming
    Zhang, Shiwu
    Davis, Thomas P.
    Li, Weihua
    Qiao, Ruirui
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2024, 34 (06)
  • [7] Analysis and Design of Core-Shell Upconverting Nanostructures
    Wistey, Mark A.
    Patel, Victor
    Loof, Joseph L.
    O'Brien, William A.
    Qi, Meng
    Erdman, Anthony J.
    Stephenson, Chad A.
    [J]. 2014 IEEE 40TH PHOTOVOLTAIC SPECIALIST CONFERENCE (PVSC), 2014, : 3248 - 3250
  • [8] Plamonic Behavior of Metallic and Core-shell Nanostructures
    Taghian, Fatemeh
    Yousefi, Mansooreh
    Ahmadi, Vahid
    [J]. 2013 21ST IRANIAN CONFERENCE ON ELECTRICAL ENGINEERING (ICEE), 2013,
  • [9] Plasmonic Core-Shell Nanostructures Enhanced Spectroscopies
    Zhou, Jun
    Wei, Di-Ye
    Zhang, Yu-Jin
    Zhang, Hua
    Li, Jian-Feng
    [J]. CHINESE JOURNAL OF CHEMISTRY, 2022, 40 (03) : 392 - 406
  • [10] Metallic core-shell nanostructures for photoelectrochemical cells
    Sheehan, Stafford W.
    Noh, Heeso
    Brudvig, Gary W.
    Cao, Hui
    Schmuttenmaer, Charles A.
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2014, 248