Room-temperature phosphorescence (RTP) materials with photo-responsive properties have attracted increasing attention... This review summarizes recent advances in light-triggered RTP systems coupled with photochromism.
First-pass extracted concept
photoresponsive room-temperature phosphorescent materials
Aliases
light-triggered RTP systems coupled with photochromism, photo-responsive RTP materials
Evidence Snippets
Supporting Sources
Linked Claims
Photoresponsive room-temperature phosphorescent materials are used or proposed for smart luminescent switches, optical logic control, and multidimensional information storage.
Room-temperature phosphorescence (RTP) materials with photo-responsive properties have attracted increasing attention for applications in smart luminescent switches, optical logic control, and multidimensional information storage.
These photoresponsive RTP materials are described as advantageous for information encryption, bioimaging, and light-controlled upconversion.
These materials demonstrate unique advantages in fields such as information encryption, bioimaging, and light-controlled upconversion.
Light is presented as an advantageous external stimulus for reversible and dynamic modulation of room-temperature phosphorescence because it offers non-contact control, high spatiotemporal resolution, and programmability.
Compared to other external stimuli, light offers the advantages of non-contact control, high spatiotemporal resolution, and excellent programmability, making it an ideal strategy for reversible and dynamic modulation of RTP.
A reported structural design strategy for photoresponsive RTP systems is to integrate photochromic and RTP units within a single material system.
From a structural design perspective, we discuss strategies to integrate photochromic and RTP units within a single material system...
Future design directions are aimed toward high-security, long-lifetime, and multi-channel collaborative luminescent systems.
Finally, future design directions and challenges are proposed, aiming toward high-security, long-lifetime, and multi-channel collaborative luminescent systems.
The reviewed integrated photochromic-RTP material systems include photoisomerizable molecules, metal-organic complexes, organic-inorganic hybrids, and purely organic radicals.
From a structural design perspective, we discuss strategies to integrate photochromic and RTP units within a single material system, covering photoisomerizable molecules, metal-organic complexes, organic-inorganic hybrids, and purely organic radicals.