MRS Meetings and Events

 

EN07.15.07 2024 MRS Spring Meeting

Thermoelectric Properties of Stressed p-Doped Polycrystalline Hollow Nanotubes

When and Where

Apr 25, 2024
5:00pm - 7:00pm

Flex Hall C, Level 2, Summit

Presenter

Co-Author(s)

Jose Manuel Sojo Gordillo1,2,Yashpreet Kaur1,Saeko Tachikawa3,Giulio de Vito1,Alex Morata2,Ilaria Zardo1

University of Basel1,Catalonia Institute for Energy Research - IREC2,National Institute of Advanced Industrial Science and Technology - AIST3

Abstract

Jose Manuel Sojo Gordillo1,2,Yashpreet Kaur1,Saeko Tachikawa3,Giulio de Vito1,Alex Morata2,Ilaria Zardo1

University of Basel1,Catalonia Institute for Energy Research - IREC2,National Institute of Advanced Industrial Science and Technology - AIST3
Thermoelectric generators have the potential to efficiently convert waste heat into valuable electrical power. However, conventional thermoelectric materials face limitations in terms of efficiency, scarcity, high cost, and scalability, impeding their widespread adoption. Nanoengineering techniques have emerged as a promising solution to enhance the thermoelectric properties of abundant and inexpensive materials like silicon. Nevertheless, the integration of these nanostructures on a large scale, necessary for efficient waste heat recovery, remains a significant challenge.<br/>Recently, a novel class of nano-enhanced materials in the form of extensive, paper-like fabrics composed of nanotubes has been developed, offering a cost-effective and scalable approach to thermoelectric power generation [1]. However, the fundamental properties of the building blocks of these fabrics, namely the p-type silicon nanotubes, have not been individually investigated to date.<br/>This study conducts electrothermal measurements using microfabricated suspended nitride membranes to characterize the thermoelectric properties of these nanotubes, including the electrical and thermal conductivity as well as the Seebeck coefficient. Furthermore, Raman thermography is employed in order to accounting for the effects of thermal contact resistance in the thermal conductivity measurement. Raman spectroscopy is also used to examine the residual mechanical stress in the nanotubes and investigate its relationship with the observed thermoelectric properties. A network model is proposed to link the macroscopic thermal properties of the fabrics with those of the nanotubes. Additionally, the study investigates the light absorption within these hollow structures. Finally, the effects of SiGe alloy on the properties of the nanotubes are compared and discussed.<br/>By understanding the interplay between the morphology, structure, and thermoelectric properties of the nanotubes, a pathway can be established for the development of more mechanically stable and efficient fabrics, with the potential for commercializing waste heat recovery through this technology.<br/>[1] Morata et al. "Large-area and adaptable electrospun silicon-based thermoelectric nanomaterials with high energy conversion efficiencies" Nat. Comm. (2018), 4759, 9(1)

Keywords

Si | thermal conductivity | thermoelectricity

Symposium Organizers

Woochul Kim, Yonsei University
Sheng Shen, Carnegie Mellon University
Sunmi Shin, National University of Singapore
Sebastian Volz, The University of Tokyo

Session Chairs

Jaeyun Moon
Sunmi Shin

In this Session

EN07.15.01
Low-Dimensional Heat Conduction in Surface Phonon Polariton Waveguide

EN07.15.02
High Thermal Conductive Liquid Crystal Elastomer Nanofibers

EN07.15.03
Nanoscale Thermal Transport in SiC: Effects of Inter-Grain Misorientation, Grain Size and Crystal Anisotropy

EN07.15.04
Theory of The Soret Effect in Liquids and Solids

EN07.15.05
Wood Waste-Based Thermal Insulation Foam for Building Energy Efficiency

EN07.15.07
Thermoelectric Properties of Stressed p-Doped Polycrystalline Hollow Nanotubes

EN07.15.08
Thermal Studies of Au–BaTiO3 Nanoscale Hybrid Metamaterial

EN07.15.09
Completely Passive Capture of Carbon Dioxide from Air Using Solar Energy

EN07.15.10
An On-Demand Bioresorbable Triboelectric Neurostimulator

EN07.15.12
Enhancing Building Thermal Management with Thermochemical Materials-Based Thermal Energy Storage

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