| Literature DB >> 30038004 |
Gang Liu1, Jue Gong2, Lingping Kong1, Richard D Schaller3,4, Qingyang Hu5, Zhenxian Liu6, Shuai Yan7, Wenge Yang5, Constantinos C Stoumpos3, Mercouri G Kanatzidis3, Ho-Kwang Mao1,8, Tao Xu9.
Abstract
Materials in metastable states, such as amorphous ice and supercooled condensed matter, often exhibit exotic phenomena. To date, achieving metastability is usually accomplished by rapid quenching through a thermodynamic path function, namely, heating-cooling cycles. However, heat can be detrimental to organic-containing materials because it can induce degradation. Alternatively, the application of pressure can be used to achieve metastable states that are inaccessible via heating-cooling cycles. Here we report metastable states of 2D organic-inorganic hybrid perovskites reached through structural amorphization under compression followed by recrystallization via decompression. Remarkably, such pressure-derived metastable states in 2D hybrid perovskites exhibit enduring bandgap narrowing by as much as 8.2% with stability under ambient conditions. The achieved metastable states in 2D hybrid perovskites via compression-decompression cycles offer an alternative pathway toward manipulating the properties of these "soft" materials.Keywords: bandgap; compression−decompression; metastable states; perovskite; pressure
Year: 2018 PMID: 30038004 PMCID: PMC6094100 DOI: 10.1073/pnas.1809167115
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205