Colossal barocaloric effects in plastic crystals

塑料晶体 材料科学 凝聚态物理 相变 物理
作者
Bing Li,Yukinobu Kawakita,Seiko Ohira‐Kawamura,Takeshi Sugahara,Hui Wang,Jingfan Wang,Yanna Chen,Saori I. Kawaguchi,Shogo Kawaguchi,Koji Ohara,Kuo Li,Dehong Yu,Richard A. Mole,Takanori Hattori,Tatsuya Kikuchi,S. Yano,Zhao Zhang,Zhe Zhang,Weijun Ren,Shangchao Lin
出处
期刊:Nature [Nature Portfolio]
卷期号:567 (7749): 506-510 被引量:425
标识
DOI:10.1038/s41586-019-1042-5
摘要

Refrigeration is of vital importance for modern society—for example, for food storage and air conditioning—and 25 to 30 per cent of the world’s electricity is consumed for refrigeration1. Current refrigeration technology mostly involves the conventional vapour compression cycle, but the materials used in this technology are of growing environmental concern because of their large global warming potential2. As a promising alternative, refrigeration technologies based on solid-state caloric effects have been attracting attention in recent decades3–5. However, their application is restricted by the limited performance of current caloric materials, owing to small isothermal entropy changes and large driving magnetic fields. Here we report colossal barocaloric effects (CBCEs) (barocaloric effects are cooling effects of pressure-induced phase transitions) in a class of disordered solids called plastic crystals. The obtained entropy changes in a representative plastic crystal, neopentylglycol, are about 389 joules per kilogram per kelvin near room temperature. Pressure-dependent neutron scattering measurements reveal that CBCEs in plastic crystals can be attributed to the combination of extensive molecular orientational disorder, giant compressibility and highly anharmonic lattice dynamics of these materials. Our study establishes the microscopic mechanism of CBCEs in plastic crystals and paves the way to next-generation solid-state refrigeration technologies. Colossal barocaloric effects are observed in the plastic crystal neopentylglycol and found to originate from the extensive molecular orientational disorder, giant compressibility and highly anharmonic lattice dynamics of the material.
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