化学
单重态
手性(物理)
对映体
化学物理
光化学
分子物理学
烯烃
磁场
自旋(空气动力学)
分子
对映选择合成
同手性
圆二色性
激进的
计算化学
光催化
圆极化
对映体过量
光敏剂
分子内力
分子轨道
分辨率(逻辑)
光解
二色性
作者
Yong Rui Poh,Arghadip Koner,Michael Reitz,Joel Yuen-Zhou
摘要
Quantities that break both mirror symmetry and time-reversal symmetry, such as the orbital angular momentum, are known to connect molecular chirality with an applied magnetic field. This concept has led to observations such as magneto-chiral dichroism and chirality-induced spin selectivity (CISS). However, being small, these effects often require additional amplification procedures such as flow chemistry to achieve bulk enantioseparation. In this work, we demonstrate how the magnetic field effect on photogenerated radical pairs, which also breaks time-reversal symmetry, can be harnessed for enantiopurification. Fundamental to this process is the collective decay of the singlet and triplet radical-pair states made possible by an applied magnetic field. Because opposite enantiomers exhibit spin-orbit coupling matrix elements of opposite signs, the singlet and triplet decay channels interfere constructively in one enantiomer. Meanwhile, molecules of the other enantiomer are funnelled into the first enantiomer through excited-state chirality inversion, achieving (dynamic kinetic) chiral resolution. Using an axially chiral binaphthyl derivative and a borane photosensitizer as prototype, we predict an appreciable enantiomeric excess (e.e.) of 90% to be possible at steady state, attained within hundreds of milliseconds when irradiated by a laser. Importantly, our analytical results showcase regimes of perfect enantioselectivity (100% e.e.), accessible by further chemical optimization of the photosensitizer for which general strategies are discussed. Overall, this work illustrates a so-far untapped but powerful control knob for photoredox catalysis based on spin chemistry principles.
科研通智能强力驱动
Strongly Powered by AbleSci AI