Ye Changqing, Ma Jinsuo, Han Pengju, Chen Shuoran, Ding Ping, Sun Bin, Wang Xiaomei
Research Centre for Green Printing Nanophotonic Materials, Jiangsu Key Laboratory for Environmental Functional Materials, Institute of Chemistry, Biology and Materials Engineering, Suzhou University of Science and Technology Suzhou 215009 P. R. China
RSC Adv. 2019 Jun 5;9(31):17691-17697. doi: 10.1039/c9ra01027k. eCollection 2019 Jun 4.
By loading a microemulsion containing both sensitizer and emitter into porous sodium polyacrylate (PAAS), a water-absorbent resin (WAR) upconversion (UC) material was fabricated for photocatalysis applications. This WAR UC material showed a highly efficient UC process in the ambient environment owing to its liquid/solid encapsulation structure. In the application measurement, the UC emission from WAR UC materials can excite the catalyst Pt/WO to produce hydroxyl radicals, yielding 7-hydroxycoumarin by reacting with coumarin. In another case, since the band gap of ZnCdS matches the energy of UC emission, hole-electron pairs can be obtained under the UC irradiation and capture electrons from rhodamine B, leading to the degradation of rhodamine B. The maximum of the photocatalysis efficiency can be up to 97%. This work solves the oxygen quenching problem by preparing a triplet-triplet annihilation upconversion (TTA-UC) O/W microemulsion and loading it into PAAS WAR, and opens a new avenue to solid-state devices for TTA-UC. The applications of photocatalytic synthesis and photocatalytic degradation lay a foundation for future practical applications for TTA-UC materials.
通过将包含敏化剂和发射体的微乳液负载到多孔聚丙烯酸钠(PAAS)中,制备了一种用于光催化应用的吸水性树脂(WAR)上转换(UC)材料。由于其液/固封装结构,这种WAR UC材料在环境条件下表现出高效的UC过程。在应用测量中,WAR UC材料的UC发射可以激发催化剂Pt/WO产生羟基自由基,通过与香豆素反应生成7-羟基香豆素。在另一种情况下,由于ZnCdS的带隙与UC发射能量匹配,在UC照射下可以获得空穴-电子对,并从罗丹明B捕获电子,导致罗丹明B降解。光催化效率最高可达97%。这项工作通过制备三重态-三重态湮灭上转换(TTA-UC)水包油微乳液并将其负载到PAAS WAR中来解决氧猝灭问题,并为TTA-UC的固态器件开辟了一条新途径。光催化合成和光催化降解的应用为TTA-UC材料未来的实际应用奠定了基础。