Colossal barocaloric effect of the spin-crossover compound {Fe(pz)2(BH3CN)2} near room temperature

Author:

Li Ruixin1ORCID,Zhang Zhe23ORCID,Bibik Yurii S.4,Gural'skiy Il'ya A.4ORCID,Zatovsky Igor. V.56,Liu Zhaodong1,Li Quanjun1ORCID,Li Bing23ORCID,Levchenko Georgiy17ORCID,Liu Bingbing1ORCID

Affiliation:

1. State Key Laboratory of Superhard Materials, International Centre of Future Science, Jilin University 1 , Changchun 130012, China

2. Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences 2 , 72 Wenhua Road, Shenyang, Liaoning 110016, China

3. School of Materials Science and Engineering, University of Science and Technology of China 3 , 72 Wenhua Road, Shenyang, Liaoning 110016, China

4. Department of Chemistry, Taras Shevchenko National University of Kyiv 4 , 01601 Kyiv, Ukraine

5. F. D. Ovcharenko Institute of Biocolloidal Chemistry, NASU 5 , Kyiv 03142, Ukraine

6. Department of Chemistry, Pavla Tychyna Uman State Pedagogical University 6 , Uman 20300, Ukraine

7. Donetsk Institute of Physics and Engineering named after A. A. Galkin 7 , Kyiv 03028, Ukraine

Abstract

As one of the most likely alternatives to traditional vapor compression refrigeration technology, solid refrigeration technology based on the barocaloric effect (BCE) has attracted extensive attention in recent years. Spin-crossover (SCO) compounds are considered suitable for working at low driving pressures due to high-pressure sensitivity and small hysteresis width. However, the entropy change (ΔSSCO) of the SCO compound is smaller than that of other excellent barocaloric materials (plastic crystals and two-dimensional perovskites). Here, we report the BCE of the SCO compound {Fe(pz)2(BH3CN)2} (pz = pyrazine) with a smaller molar mass and a third source of entropy change besides electron and vibrational entropy changes. Compound {Fe(pz)2(BH3CN)2} exhibits high pressure sensitivity (dT1/2dP= 20.2 K kbar−1) as well as entropy change (ΔSSCO= 202 J kg−1 K−1). The maximum values of reversible isothermal entropy change (ΔSit,rev,max) and adiabatic temperature change (ΔTad,rev,max) at 1 kbar are only 103 J kg−1 K−1 and ∼0 K, respectively, due to the hysteresis behavior. However, at sufficiently high driving pressures, ΔSit,rev,max exceeds 200 J kg−1 K−1, and ΔTad,rev,max can reach ∼47 K, which exceeds all SCO compounds reported in BCE studies and is comparable to some plastic-crystalline and two-dimensional perovskite barocaloric materials. The excellent BCE of the SCO compound {Fe(pz)2(BH3CN)2} is mainly due to its small molar mass, which makes the unit mass compound exhibit higher ΔSSCO, while the introduction of the third source of entropy change—the reorientation entropy change (ΔSreo), only plays a small role. This is expected to promote the practical application of SCO compounds as barocaloric refrigerants.

Funder

European Federation of Academies of Sciences and Humanities

Key Research Program of Frontier Science, Chinese Academy of Sciences

Liaoning Provincial Science for Distinguished Young Scholar

Publisher

AIP Publishing

Reference57 articles.

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2. See https://climatechangeconnection.org/emissions/co2-equivalents/ for “ CO2 equivalents.”

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