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Trade-off between the near-field heat transfer and the space charge effect in graphene-anode thermionic energy converters

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  • Liang, Tao
  • Chen, Jingyi
  • Chen, Xiaohang
  • Su, Shanhe
  • Chen, Jincan

Abstract

The high work function of electrode materials inhibits the improvement of the performance of thermionic energy converters. Space charge effect and near-field heat transfer are also significant factors restricting the thermoelectric conversion capability. A micro-scale graphene-anode thermionic energy converter is proposed, in which a monolayer graphene sheet is placed on the substrate as the collector. The effects of both the space charge effect and the near-field heat transfer in the vacuum gap of the device are discussed based on Poisson's equation and the framework of fluctuation electrodynamics. Expressions for the power output density and efficiency of the system are derived. The systemic performance characteristics are comprehensively analyzed by optimizing main parameters. The results show that the electrode temperatures, current density, and energy fluxes in each portion are significantly regulated by the voltage output and the distance between the electrodes. There is a trade-off between the near-field heat transfer and the space charge effect so that the system can achieve optimum performance. The maximum values of the power output density and efficiency of the proposed system are, respectively, enhanced by 2.135% and 8.824% compared to those of the metal-thermionic energy converter. The optimal selection criteria of key parameters are determined, providing valuable guidance for actual operation.

Suggested Citation

  • Liang, Tao & Chen, Jingyi & Chen, Xiaohang & Su, Shanhe & Chen, Jincan, 2022. "Trade-off between the near-field heat transfer and the space charge effect in graphene-anode thermionic energy converters," Energy, Elsevier, vol. 260(C).
  • Handle: RePEc:eee:energy:v:260:y:2022:i:c:s0360544222020667
    DOI: 10.1016/j.energy.2022.125174
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    References listed on IDEAS

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    1. Wang, Yuan & Su, Shanhe & Liu, Tie & Su, Guozhen & Chen, Jincan, 2015. "Performance evaluation and parametric optimum design of an updated thermionic-thermoelectric generator hybrid system," Energy, Elsevier, vol. 90(P2), pages 1575-1583.
    2. Lin, Chungwei & Wang, Bingnan & Teo, Koon Hoo & Zhang, Zhuomin, 2018. "A coherent description of thermal radiative devices and its application on the near-field negative electroluminescent cooling," Energy, Elsevier, vol. 147(C), pages 177-186.
    3. Peng, Wanli & Gonzalez-Ayala, Julian & Su, Guozhen & Chen, Jincan & Hernández, Antonio Calvo, 2021. "Solar-driven sodium thermal electrochemical converter coupled to a Brayton heat engine: Parametric optimization," Renewable Energy, Elsevier, vol. 164(C), pages 260-271.
    4. Rahman, Ehsanur & Nojeh, Alireza, 2020. "Harvesting solar thermal energy with a micro-gap thermionic-thermoelectric hybrid energy converter: Model development, energy exchange analysis, and performance optimization," Energy, Elsevier, vol. 204(C).
    5. Dasari, Bhagya Lakshmi & Nouri, Jamshid M. & Brabazon, Dermot & Naher, Sumsun, 2017. "Graphene and derivatives – Synthesis techniques, properties and their energy applications," Energy, Elsevier, vol. 140(P1), pages 766-778.
    6. Ehsanur Rahman & Alireza Nojeh, 2021. "Semiconductor thermionics for next generation solar cells: photon enhanced or pure thermionic?," Nature Communications, Nature, vol. 12(1), pages 1-9, December.
    7. Liang, Tao & Hu, Cong & Fu, Tong & Su, Shanhe & Chen, Jincan, 2022. "The maximum efficiency enhancement of a solar-driven graphene-anode thermionic converter realizing total photon reflection," Energy, Elsevier, vol. 239(PA).
    8. Mehmood, Haris & Nasser, Hisham & Zaidi, Syed Muhammad Hassan & Tauqeer, Tauseef & Turan, Raşit, 2022. "Physical device simulation of dopant-free asymmetric silicon heterojunction solar cell featuring tungsten oxide as a hole-selective layer with ultrathin silicon oxide passivation layer," Renewable Energy, Elsevier, vol. 183(C), pages 188-201.
    9. Han, Yuan & Zhang, Houcheng & Hu, Ziyang & Hou, Shujin, 2021. "An efficient hybrid system using a graphene-based cathode vacuum thermionic energy converter to harvest the waste heat from a molten hydroxide direct carbon fuel cell," Energy, Elsevier, vol. 223(C).
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