TY - CHAP
T1 - Condensed-Matter Simulation
AU - Sun, Haitao
AU - Hu, Zhubin
N1 - Publisher Copyright:
© 2025 by John Wiley & Sons, Inc. All rights reserved, including rights for text and data mining and training of artificial intelligence technologies or similar technologies.
PY - 2025/1/1
Y1 - 2025/1/1
N2 - We reviewed recent advancements in theoretical simulations of condensed matter, particularly focusing on the solid-state solvation effect in organic light-emitting diodes ( OLEDs ). We introduced basic concepts and discussed excited state properties that are closely relevant to high-performance OLED from the perspectives of OLED structure, morphology, and photoluminescence (PL) properties. Topics included energy levels of dimers, bimolecular arrangement models, aggregate types, molecular orientation, solid-state solvation simulations, and charge–carrier mobility modeling. Meanwhile, we also briefly covered theories of multiscale simulations based on first-principle electronic structure methods, force-field methods, statistical mechanisms, and continuum theories. We described the prospect of future opportunities in developing efficient and robust theoretical tools to accelerate the discovery of novel OLED materials.
AB - We reviewed recent advancements in theoretical simulations of condensed matter, particularly focusing on the solid-state solvation effect in organic light-emitting diodes ( OLEDs ). We introduced basic concepts and discussed excited state properties that are closely relevant to high-performance OLED from the perspectives of OLED structure, morphology, and photoluminescence (PL) properties. Topics included energy levels of dimers, bimolecular arrangement models, aggregate types, molecular orientation, solid-state solvation simulations, and charge–carrier mobility modeling. Meanwhile, we also briefly covered theories of multiscale simulations based on first-principle electronic structure methods, force-field methods, statistical mechanisms, and continuum theories. We described the prospect of future opportunities in developing efficient and robust theoretical tools to accelerate the discovery of novel OLED materials.
KW - Excited state properties
KW - Molecular orientation
KW - Multiscale simulation
KW - OLEDs
KW - Solid-state solvation
UR - https://www.scopus.com/pages/publications/105022034008
U2 - 10.1002/9781119694144.ch10
DO - 10.1002/9781119694144.ch10
M3 - 章节
AN - SCOPUS:105022034008
SN - 9781119694113
SP - 337
EP - 376
BT - Organic Electroluminescence
PB - wiley
ER -