open access publication

Article, 2022

Inorganic‐Based Printed Thermoelectric Materials and Devices

Advanced Engineering Materials, ISSN 1527-2648, 1438-1656, Volume 25, 2, 10.1002/adem.202200980

Contributors

Sarbajna, Avishek 0000-0002-3796-0019 [1] Rösch, Andres Georg 0000-0003-1632-3915 [2] Franke, Leonard [2] Lemmer, Uli 0000-0001-9892-329X [2] Mallick, M Mofasser 0000-0003-2105-6153 (Corresponding author) [2]

Affiliations

  1. [1] Technical University of Denmark
  2. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Karlsruhe Institute of Technology
  4. [NORA names: Germany; Europe, EU; OECD]

Abstract

One of the simplest ways to generate electric power from waste heat is thermoelectric (TE) energy conversion. So far, most of the research on thermoelectrics has focused on inorganic bulk TE materials and their device applications. However, high production costs per power output and limited shape conformity hinder applications of state‐of‐the‐art thermoelectric devices (TEDs). In recent years, printed thermoelectrics has emerged as an exciting pathway for their potential in the production of low‐cost shape‐conformable TEDs. Although several inorganic bulk TE materials with high performance are successfully developed, achieving high performance in inorganic‐based printed TE materials is still a challenge. Nevertheless, significant progress has been made in printed thermoelectrics in recent years. In this review article, it is started with an introduction signifying the importance of printed thermoelectrics followed by a discussion of theoretical concepts of thermoelectricity, from fundamental transport phenomena to device efficiency. Afterward, the general process of inorganic TE ink formulation is summarized, and the current development of the inorganic and hybrid inks with the mention of their TE properties and their influencing factors is elaborated. In the end, TEDs with different architecture and geometries are highlighted by documenting their performance and fabrication techniques.

Keywords

TE materials, TE properties, applications, architecture, article, concepts of thermoelectricity, conformation, conversion, cost, development, device applications, device efficiency, devices, discussion, efficiency, electric power, energy, energy conversion, fabrication, fabrication techniques, factors, formulation, general process, geometry, heat, hybrid, hybrid ink, ink, ink formulation, introduction, materials, output, pathway, performance, potential, power, printed thermoelectrics, production, production costs, progression, properties, research, review, review article, shape conformity, technique, thermoelectric devices, thermoelectrics, transport, waste, waste heat, years

Funders

  • Deutsche Bundesstiftung Umwelt
  • Deutsche Forschungsgemeinschaft
  • Ministerium für Wissenschaft, Forschung und Kunst Baden-Württemberg

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