论文标题
量子计算的应用用于研究电子过渡中苯基磺酰基 - 加唑的tadf发射器中的应用
Applications of Quantum Computing for Investigations of Electronic Transitions in Phenylsulfonyl-carbazole TADF Emitters
论文作者
论文摘要
对苯基磺酰基 - 加唑化合物的第一单曲线(S1)和三单元(T1)激发态的量子化学研究,该化合物作为有用的热激活的延迟荧光(TADF)发射器,用于发射二极管(OLED)应用,用量子量化量化量化量化量化量化量化(QE)量子量化(QE),并进行量级变量。量子模拟器和设备上的放气(VQD)算法。这些量子模拟是用双重Zeta质量基集对tADF分子的最高占用和最低的未占用分子轨道(HOMO,LUMO)组成的活性空间进行的。 S1和T1($ΔE_{ST} $)之间的能量分离的差异与量子模拟器的计算所预测的差异与实验数据非常吻合。通过使用QEOM-VQE和VQD算法,发现激发态的精确能量的16和88 MHA的差异在没有误差缓解的情况下对量子设备执行模拟。通过利用国家层析成像缓解误差来净化量子状态和正确的能量值,可以将针对未固定结果的大误差提高到相对于精确值的3 MHA的差异。因此,可以在$Δe_{st} $的值和实验中发现的值的值之间找到出色的一致性。
A quantum chemistry study of the first singlet (S1) and triplet (T1) excited states of phenylsulfonyl-carbazole compounds, proposed as useful thermally activated delayed fluorescence (TADF) emitters for organic light emitting diode (OLED) applications, was performed with the quantum Equation-Of-Motion Variational Quantum Eigensolver (qEOM-VQE) and Variational Quantum Deflation (VQD) algorithms on quantum simulators and devices. These quantum simulations were performed with double zeta quality basis sets on an active space comprising the highest occupied and lowest unoccupied molecular orbitals (HOMO, LUMO) of the TADF molecules. The differences in energy separations between S1 and T1 ($ΔE_{st}$) predicted by calculations on quantum simulators were found to be in excellent agreement with experimental data. Differences of 16 and 88 mHa with respect to exact energies were found for excited states by using the qEOM-VQE and VQD algorithms, respectively, to perform simulations on quantum devices without error mitigation. By utilizing error mitigation by state tomography to purify the quantum states and correct energy values, the large errors found for unmitigated results could be improved to differences of, at most, 3 mHa with respect to exact values. Consequently, excellent agreement could be found between values of $ΔE_{st}$ predicted by quantum simulations and those found in experiments.