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基于第一性原理计算了2, 3-二呋喃基马来酸酐(2, 3-difurylmaleic anhydride, DFMA)的光致变色开关机理. 在获得DFMA分子开环(O-DFMA)和闭环(C-DFMA)稳定构型的基础上, 应用微动弹性带(NEB)法找到了开环与闭环之间的最小能量路径(MEP)及过渡态构型(TS-DFMA), 得出O-DFMA和C-DFMA的势垒分别是24959 cm –1(3.0945 eV)和23328 cm –1(2.8923 eV), 预示着DFMA分子可能为热稳定双稳态分子. 基于MEP曲线(基态S 0)对应的分子构型, 计算了DFMA最低8个单重激发态的势能曲线, 发现仅第1激发态(S 1态)在TS-DFMA构型时出现极小值. 结合分子轨道跃迁及其图像, DFMA分子光致变色的机理为: 1)闭环→开环: 在S 1–S 0共振跃迁的波长激光作用下, C-DFMA分子从S 0跃迁至S 1态, 然后分子沿S 1态势能曲线退激发, 在TS-DFMA构型处发生从S 1态到S 0态的交叉跳变回到O-DFMA构型, 完成由闭环→开环的开关动作. 这一开关过程中S 1态势能曲线单调下降, 预示着开环动作不会有荧光辐射发生; 2)开环→闭环: 在S 1–S 0共振跃迁的波长激光作用下, O-DFMA分子从S 0跃迁至S 1态. 从O-DFMA构型到TS-DFMA构型, S 1态势能曲线存在一段相对“平坦”的区域, 仅在接近TS-DFMA构型时才明显单调下降. 这意味着O-DFMA分子可能需要借助振动激发才能跨越S 1这段“平坦”区从而接近到TS-DFMA构型, 然后顺着单调下降的S 1态势能曲线退激发, 在TS-DFMA构型处发生从S 1态到S 0态的交叉跳变, 完成由开环→闭环的开关动作. 也正因为有起初S 1态势能曲线的平坦区, 这一激发开关过程中同时伴有荧光辐射发生. DFMA分子的光致变色机理预示着其适合制作荧光分子开关.The photochromic switching mechanism of 2,3-difurylmaleic anhydride (DFMA) is investigated by first-principles calculations. Based on the stable structures of the open-ring (O-DFMA) and closed-ring (C-DFMA) of the DFMA, the minimum energy path (MEP) and the configuration of transition states (TS-DFMA) between the O-DFMA and C-DFMA are found by using the nudged elastic band (NEB) method, the potential barriers of O-DFMA and C-DFMA are 24959 cm –1(3.0945 eV) and 23328 cm –1(2.8923 eV), respectively, indicating that the DFMA molecule may be a thermally bistable molecule. Along the molecular configuration corresponding to the MEP curve (i.e. ground state S 0), the potential energy curves of the lowest 8 singlet excited states of DFMA are calculated. Among these energy curves, only the first electronic excited state (i.e. S 1state) has a minimum value in the transition state (TS-DFMA) configuration. Combined with the molecular orbital transitions and orbital images, the photochromic mechanism of DFMA can be described as follows (1) From C-DFMA to O-DFMA process: under the action of the laser with S 1–S 0resonance transition wavelength, the C-DFMA transits from S 0to S 1state, and then deactivates along the S 1potential energy curve, until a cross jumping transition occurs at the TS-DFMA structure from S 1to S 0and finally the molecule along the S 0potentioal energy curve returns to the O-DFMA configuration, then the switching action from closed-ring to open-ring is completed. The S 1state potential energy curve drops monotonically in this switching process, implying that there will be no fluorescent radiation in this process. (2) From O-DFMA to C-DFMA process: under the action of the laser with S 1–S 0resonance transition wavelength, O-DFMA transits from S 0to S 1state. From the O-DFMA to TS-DFMA structure, there is a relatively “flat” area in the potential energy curve of the S 1state, and it decreases significantly only when it is close to the TS-DFMA. This means that O-DFMA needs to be excited with some vibrational modes to pass through the “flat” region of S 1and approaching to the TS-DFMA configuration, and then DFMA de-excites from the S 1state potential energy curve along a monotonic decline and a cross jumping transition from S 1to S 0occurs in the TS-DFMA configuration, completing the switching action from open-ring to closed-ring. It is also precisely because of the flat region of the potential energy curve of the initial S 1state that this excitation and switching process is accompanied by fluorescent radiations. The photochromic mechanism of DFMA indicates that it is suitable for making fluorescent molecular switches.
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Keywords:
- 2, 3-difurylmaleic anhydride/
- photochromic mechanism/
- molecular switch/
- density functional theory/
- Nudged Elastic Band method/
- bistable states
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Methods Structure RC2-C3/nm RO10-O17/nm DO10-C2-C3-O17/(°) Total thermal energy (hartree) Energy difference/cm–1 BP/SVP O-DFMA 0.1382 0.5552 20.24 –836.23050 1232 C-DFMA 0.1450 0.3156 0.92 –836.22488 B3LYP/TZVP O-DFMA 0.1359 0.5482 21.33 –836.63680 1815 C-DFMA 0.1447 0.3153 0.98 –836.62853 B3LYP/def2-TZVP O-DFMA 0.1359 0.5480 19.82 –836.68342 2055 C-DFMA 0.1445 0.3150 0.75 –836.67406 NEB/def2-SVP TS-DFMA 0.1380 0.3365 8.45 -
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