TY - JOUR
T1 - Sn2P2S6
T2 - A lead-free reversible thermochromic ferroelectric with high near-infrared reflectance
AU - Wu, Meixia
AU - Zhou, Xiao
AU - Liang, Xihui
AU - Han, Yifeng
AU - Li, Yonghong
AU - Jiang, Xingan
AU - Wang, Xueyun
AU - Chai, Yisheng
AU - Zhou, Xiang
AU - Yang, Hui
AU - Lin, Dan
AU - Xu, Ping
AU - Li, Man Rong
N1 - Publisher Copyright:
© 2022 Elsevier B.V.
PY - 2023/1/15
Y1 - 2023/1/15
N2 - Multifunctional thermochromic materials integrated optical, ferroelectric, and/or magnetic properties have been long envisioned and played an invaluable role in signal processing and non-contact optical information storage in smart windows. However, poor materials stability, together with high discoloration temperature, absence of ferroelectric, or magnetic behaviors, impedes most thermochromic materials for practical applications. Here, the thermochromic behavior of all-inorganic lead-free ferroelectric Sn2P2S6 (SPS) is extensively studied, which exhibits a reversible color change between light orange and red around the ferroelectric-paraelectric phase transition temperature (∼ 67 °C). In situ powder X-ray diffraction (PXRD) and Raman spectroscopy indicate the change of P-S and Sn-S bond distance, and thus result in the modification of (P2S6) octahedral geometry and the coordination environment of Sn2+ ions along with the evolution of thermochromism (TCM). Additionally, the first-principles calculations reveal that, the Sn 5s2 stereochemically active lone pair electrons evoke negative lattice expansion comparable to that of the known ZrW2O8 at warming and is responsible for the reversible TCM of SPS. SPS also possesses high near-infrared reflectance (R > 80 %, 1100-2500 nm). The integration of ferroelectricity, high near-infrared reflectance, and TCM below 100 °C renders potential applications of the titled compound in multifunctional optical smart windows.
AB - Multifunctional thermochromic materials integrated optical, ferroelectric, and/or magnetic properties have been long envisioned and played an invaluable role in signal processing and non-contact optical information storage in smart windows. However, poor materials stability, together with high discoloration temperature, absence of ferroelectric, or magnetic behaviors, impedes most thermochromic materials for practical applications. Here, the thermochromic behavior of all-inorganic lead-free ferroelectric Sn2P2S6 (SPS) is extensively studied, which exhibits a reversible color change between light orange and red around the ferroelectric-paraelectric phase transition temperature (∼ 67 °C). In situ powder X-ray diffraction (PXRD) and Raman spectroscopy indicate the change of P-S and Sn-S bond distance, and thus result in the modification of (P2S6) octahedral geometry and the coordination environment of Sn2+ ions along with the evolution of thermochromism (TCM). Additionally, the first-principles calculations reveal that, the Sn 5s2 stereochemically active lone pair electrons evoke negative lattice expansion comparable to that of the known ZrW2O8 at warming and is responsible for the reversible TCM of SPS. SPS also possesses high near-infrared reflectance (R > 80 %, 1100-2500 nm). The integration of ferroelectricity, high near-infrared reflectance, and TCM below 100 °C renders potential applications of the titled compound in multifunctional optical smart windows.
KW - Multifunctional materials
KW - NIR reflectance
KW - Phosphorus-sulfur compound
KW - Thermochromism
UR - http://www.scopus.com/inward/record.url?scp=85139737922&partnerID=8YFLogxK
U2 - 10.1016/j.cej.2022.139599
DO - 10.1016/j.cej.2022.139599
M3 - Article
AN - SCOPUS:85139737922
SN - 1385-8947
VL - 452
JO - Chemical Engineering Journal
JF - Chemical Engineering Journal
M1 - 139599
ER -