TY - JOUR
T1 - Pyroelectric Crystals Crafted by Reduction in Symmetry and Their Functional Applications in Chemistry
AU - Ehre, David
AU - Meirzadeh, Elena
AU - Dishon Ben Ami, Shiri
AU - Weissbuch, Isabelle
AU - Fuhrman Javitt, Leah
AU - Lahav, Meir
N1 - Publisher Copyright: © 2025 The Authors. Published by American Chemical Society.
PY - 2025/1/9
Y1 - 2025/1/9
N2 - Polar crystals, which display pyroelectricity and piezoelectricity, can serve as a useful tool in the research of solid-state chemistry. However, the strict requirements for the absence of prevalent symmetry elements in such crystals have limited their numbers and thus their possible applications in the field. Here, we report that by combining the method of crystal doping with “tailor-made” auxiliaries, one may convert nonpolar crystals into polar ones and thus investigate some of their concealed properties by electrical measurements. After a brief outline of the principles of pyroelectricity and the rational design behind dopant selection for each crystal, some functional applications are illustrated. This includes the following examples: (i) How alcohols induce the crystallization of the metastable β-polymorph of glycine in aqueous solutions. (ii) Pyroelectricity from surfaces that delineate nonpolar crystals. (iii) Engineering pyroelectric crystals depleted from piezoelectricity. (iv) The detection of enantiomeric disorder in crystal growth. (v) The discovery of a chemical cooperative mechanism of electro-freezing of supercooled water induced by “ice maker” species and electric fields.
AB - Polar crystals, which display pyroelectricity and piezoelectricity, can serve as a useful tool in the research of solid-state chemistry. However, the strict requirements for the absence of prevalent symmetry elements in such crystals have limited their numbers and thus their possible applications in the field. Here, we report that by combining the method of crystal doping with “tailor-made” auxiliaries, one may convert nonpolar crystals into polar ones and thus investigate some of their concealed properties by electrical measurements. After a brief outline of the principles of pyroelectricity and the rational design behind dopant selection for each crystal, some functional applications are illustrated. This includes the following examples: (i) How alcohols induce the crystallization of the metastable β-polymorph of glycine in aqueous solutions. (ii) Pyroelectricity from surfaces that delineate nonpolar crystals. (iii) Engineering pyroelectric crystals depleted from piezoelectricity. (iv) The detection of enantiomeric disorder in crystal growth. (v) The discovery of a chemical cooperative mechanism of electro-freezing of supercooled water induced by “ice maker” species and electric fields.
UR - http://www.scopus.com/inward/record.url?scp=85214556909&partnerID=8YFLogxK
U2 - https://doi.org/10.1021/acs.cgd.4c01321
DO - https://doi.org/10.1021/acs.cgd.4c01321
M3 - مقالة مرجعية
SN - 1528-7483
VL - 25
SP - 858
EP - 870
JO - Crystal Growth and Design
JF - Crystal Growth and Design
IS - 3
ER -