化学
位阻效应
部分
量子产额
荧光
合理设计
碳纤维
分子内力
组合化学
产量(工程)
光化学
螯合作用
磷
立体化学
碳链
离子
选择性
配体(生物化学)
发光
发射强度
聚集诱导发射
作者
Xiangli Li,Galina S. Tsebrikova,Н. С. Николаева,M. A. Lapshina,В. Е. Баулин,Aslan Yu Tsivadze,Dechang Jia,Yu Zhou,Baoqiang Li
摘要
ABSTRACT Phosphorus doping is widely employed to tune the fluorescence (FL) of carbon dots (CDs); however, how specific phosphorus chemical moieties govern FL intensity remains poorly elucidated. To reveal structure–property relationships at the moiety level, we developed a combinatorial precursor design strategy to precisely synthesize eight precursor‐derived CDs with tailored organophosphorus moieties, including triphenylphosphonium and phenylphosphonic acid moieties, or their combination, within a shared polyacrylamide (PAM) backbone. The local organophosphorus microenvironment governs the FL properties of CDs. The sterically bulky triphenylphosphonium moieties rigidify the carbon framework to restrict intramolecular motions, thereby activating crosslink‐enhanced emission (CEE) and enhancing absolute quantum yield (QY) by 1.57‐fold. Conversely, electron‐withdrawing phenylphosphonic acid moieties introduce nonradiative electron trap states that attenuate emission intensity by 16.71%. Notably, phenylphosphonic acid and triphenylphosphonium moieties synergistically enhance the coordination affinity for copper(II) ions ( K = 2.92 × 10 7 M −1 ), arising from oxygen‐donor chelation and steric stabilization. This moiety‐level combinatorial precursor strategy enables the rational design of carbon nanostructures with precisely tailored FL and metal‐ion affinity capabilities.
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