Project

Strain to stabilize metal halide PERovSkites: an Integrated effort from fundamentalS to opto-electronic applicaTions (PERsist).

Acronym
PERsist
Code
01IB2520
Duration
01 January 2021 → 31 December 2024
Funding
Regional and community funding: Special Research Fund
Promotor-spokesperson
Research disciplines
  • Natural sciences
    • Condensed matter physics and nanophysics not elsewhere classified
    • Photonics, optoelectronics and optical communications
    • Solid state chemistry
    • Chemistry of clusters, colloids and nanomaterials
    • Theoretical and computational chemistry not elsewhere classified
Keywords
Metal halide perovskites Opto-electronic materials Structure-function-stability relationship Materials engineering Materials characterization
 
Project description

Light detection and emission are crucial for displays, medical and security scanners. Given the societal relevance, there is an emerging need for novel opto-electronic materials with higher conversion effi- ciency and lower production cost. Metal halide perovskites are promising high-performance semicon- ductors due to their strong absorption and emission in a broad spectral range and their ease of manu- facturing. So far, integration in opto-electronic devices was hampered by inherent stability issues such as the degradation from the optically active “black” phase into an inactive phase. Based on our recent proof-of-concept, we will explore a fundamentally new paradigm to stabilize the black phase under ambient conditions. This innovative concept exploits strain engineering, with thin films fixed to sub- strates and/or patterned at the nano- to micrometer scale. PERsist builds on the synergy between leading experts in high-end micro/spectroscopy & modelling of nanomaterials.