TY - JOUR
T1 - Band Gap Insensitivity to Large Chemical Pressures in Ternary Bismuth Iodides for Photovoltaic Applications
AU - Huang, Xing
AU - Huang, Su
AU - Biswas, Pratim
AU - Mishra, Rohan
N1 - Publisher Copyright:
© 2016 American Chemical Society.
PY - 2016/12/29
Y1 - 2016/12/29
N2 - Ternary bismuth iodides (A3Bi2I9, where A is a monovalent cation) have been recently suggested as less toxic alternatives to lead halide perovskites for photovoltaic applications. Using density functional theory based calculations, we predict that the band gap in these compounds is insensitive to chemical pressure applied by changing the size of A-site cations, which is confirmed experimentally. We further show that the band gap in A3Bi2I9 compounds increases (or decreases) by stretching (or compressing) Bi2I9 bioctahedra, and the observed band gap insensitivity is a direct result of the counteractive interplay of three factors: the size of the A-site cations, the presence of H-bonds with organic A-site cations, and spin-orbit coupling (SOC) effects. Our study demonstrates that the layered structure of A3Bi2I9 compounds intrinsically limits any significant modification of their band gap and highlights the need for three-dimensional connectivity of BiI6 octahedra in order to achieve high efficiency Bi-based photovoltaics. (Graph Presented).
AB - Ternary bismuth iodides (A3Bi2I9, where A is a monovalent cation) have been recently suggested as less toxic alternatives to lead halide perovskites for photovoltaic applications. Using density functional theory based calculations, we predict that the band gap in these compounds is insensitive to chemical pressure applied by changing the size of A-site cations, which is confirmed experimentally. We further show that the band gap in A3Bi2I9 compounds increases (or decreases) by stretching (or compressing) Bi2I9 bioctahedra, and the observed band gap insensitivity is a direct result of the counteractive interplay of three factors: the size of the A-site cations, the presence of H-bonds with organic A-site cations, and spin-orbit coupling (SOC) effects. Our study demonstrates that the layered structure of A3Bi2I9 compounds intrinsically limits any significant modification of their band gap and highlights the need for three-dimensional connectivity of BiI6 octahedra in order to achieve high efficiency Bi-based photovoltaics. (Graph Presented).
UR - http://www.scopus.com/inward/record.url?scp=85008450639&partnerID=8YFLogxK
U2 - 10.1021/acs.jpcc.6b09567
DO - 10.1021/acs.jpcc.6b09567
M3 - Article
AN - SCOPUS:85008450639
SN - 1932-7447
VL - 120
SP - 28924
EP - 28932
JO - Journal of Physical Chemistry C
JF - Journal of Physical Chemistry C
IS - 51
ER -