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Ultra-high Seebeck coefficient of a thermal sensor through entropic optimisation of ligand length of Fe(ii) spin-crossover (SCO) materials


Citation

Che Hassan, Hazirah and Mohd Said, Suhana and Nik Ibrahim, Nik Muhd Jazli and Megat Hasnan, Megat Muhammad Ikhsan and Mohd Noor, Ikhwan Syafiq and Zakaria, Rozalina and Mohd Salleh, Mohd Faiz and Md. Noor, Nur Linahafizza and Abdullah, Norbani (2021) Ultra-high Seebeck coefficient of a thermal sensor through entropic optimisation of ligand length of Fe(ii) spin-crossover (SCO) materials. RSC Advances, 11 (34). pp. 20970-20982. ISSN 2046-2069; eISSN: 2046-2069

Abstract

In this work, we present a spin-crossover (SCO) complex molecular formulation [Fe(Ln)2](BF4)2 in an electrochemical single couple solution. A Seebeck voltage arises when an electrochemical single couple solution is subjected to a temperature difference, resulting in a single couple reaction at either terminal of the electrochemical cell. The ultrahigh Seebeck coefficients were obtained due to a number of molecular optimisation strategies. The [Fe(L16)2](BF4)2 complex demonstrated a maximum Seebeck coefficient of 8.67 mV K−1, achieved through a six-pronged approach to maximise entropy during the transition from low spin (LS) to high spin (HS) through: (i) a change in spin state, (ii) a change in physical liquid crystalline state, (iii) the spin Seebeck effect, (iv) the kosmotropic and chaotropic effect, (v) the fastener effect and (vi) thermal heat absorbance. A reduction of the Seebeck coefficient to 1.68 mV K−1 during the HS–LS transition at higher temperatures is related to the single spin state transition entropy change. In summary, this paper presents a systematic study to identify the contributing factors in the production of a sensor with an ultrahigh Seebeck coefficient for energy harvesting through the optimisation of its molecular entropy elements.


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Additional Metadata

Item Type: Article
Divisions: Centre of Foundation Studies for Agricultural Science
DOI Number: https://doi.org/10.1039/D1RA01387D
Publisher: Royal Society of Chemistry
Keywords: Spin-crossover; Seebeck coefficient; Thermal sensor; Entropy optimization; Ligand length; Fe(II) complex; [Fe(Ln)2](BF4)2; Electrochemical single couple solution; Spin Seebeck effect; Kosmotropic effect; Chaotropic effect; Fastener effect; High-spin; Low-spin; Liquid crystalline state; Energy harvesting; Molecular optimization
Depositing User: Mohamad Jefri Mohamed Fauzi
Date Deposited: 23 Jun 2025 03:58
Last Modified: 23 Jun 2025 03:58
Altmetrics: http://www.altmetric.com/details.php?domain=psasir.upm.edu.my&doi=10.1039/D1RA01387D
URI: http://psasir.upm.edu.my/id/eprint/93456
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