TY - JOUR
T1 - Coupling Photogeneration with Thermodynamic Modeling of Light-Induced Alloy Segregation Enables the Identification of Stabilizing Dopants
AU - Zhu, Tong
AU - Grater, Luke
AU - Teale, Sam
AU - Vasileiadou, Eugenia S.
AU - Sharir-Smith, Jonathan
AU - Chen, Bin
AU - Kanatzidis, Mercouri G.
AU - Sargent, Edward H.
N1 - Publisher Copyright:
© 2024 American Chemical Society
PY - 2024/8/13
Y1 - 2024/8/13
N2 - Halide segregation in perovskites for photovoltaics and light-emitting diodes is a topic of interest given its impact on long-term device reliability. We sought to develop phase diagrams of alloys that take account not only of temperature and composition but also include the effects of photon fluence: optical excitation that contributes, through the thermalization of excited carriers, to excitation-intensity-dependent phase diagrams. The model accurately replicates the experimentally observed light-induced phase segregation behavior of the MAPb(I,Br)3 system. From there, we sought to study how best to design new, phase-stable, mixed-halide alloys. Using the model, we explored candidate dopants that could stabilize cubic (FA,Cs)-based mixed-halide perovskites. This leads to the prediction that the pseudohalide anion BF4- will suppress phase segregation. Experimentally, we find that BF4- incorporates into FA0.83Cs0.17Pb(I0.6Br0.4)3; and that BF4- stabilized absorbers maintain >18% power conversion efficiency (PCE) over 800 h under 1-sun illumination at MPP with no performance loss. The model links photostability with the structure and electronic properties of materials and provides guidance on stabilizing via alloying.
AB - Halide segregation in perovskites for photovoltaics and light-emitting diodes is a topic of interest given its impact on long-term device reliability. We sought to develop phase diagrams of alloys that take account not only of temperature and composition but also include the effects of photon fluence: optical excitation that contributes, through the thermalization of excited carriers, to excitation-intensity-dependent phase diagrams. The model accurately replicates the experimentally observed light-induced phase segregation behavior of the MAPb(I,Br)3 system. From there, we sought to study how best to design new, phase-stable, mixed-halide alloys. Using the model, we explored candidate dopants that could stabilize cubic (FA,Cs)-based mixed-halide perovskites. This leads to the prediction that the pseudohalide anion BF4- will suppress phase segregation. Experimentally, we find that BF4- incorporates into FA0.83Cs0.17Pb(I0.6Br0.4)3; and that BF4- stabilized absorbers maintain >18% power conversion efficiency (PCE) over 800 h under 1-sun illumination at MPP with no performance loss. The model links photostability with the structure and electronic properties of materials and provides guidance on stabilizing via alloying.
UR - https://www.scopus.com/pages/publications/85199542494
U2 - 10.1021/acs.chemmater.4c01402
DO - 10.1021/acs.chemmater.4c01402
M3 - 文章
AN - SCOPUS:85199542494
SN - 0897-4756
VL - 36
SP - 7438
EP - 7450
JO - Chemistry of Materials
JF - Chemistry of Materials
IS - 15
ER -