首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Valence Tautomerism in Co-Dioxolene Complexes: Static and Time-Resolved Infrared Spectroscopy Study
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Valence Tautomerism in Co-Dioxolene Complexes: Static and Time-Resolved Infrared Spectroscopy Study

机译:二氧戊烯配合物中的价互变异构现象:静态和时间分辨红外光谱研究

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In this work, we studied the valence tautomerism process on two different Co—dioxolene complexes by means of transient infrared spectroscopy (TRIR). The molecules investigated are ls-Co~(III)(Cat-N-BQ)- (Cat-N-SQ) (DQ2) and [ls-Co~(III)(tpy)(Cat-N-SQ)]PF6 (tpy), where Cat-NBQ = 2-(2-hydroxy-3,5-ditert-butylphenyl-imino)-4,6-ditert-butylcyclohexa-3,5-di- enone, Cat-N-SQ is the dianionic radical analogue, and tpy = 2,2'-6-2"- terpyridine. DFT calculations of the harmonic frequencies for the two complexes allow us to pinpoint the normal modes to be used as markers of the semiquinonate and benzoquinonate isomers. The photoinduced one-electron charge transfer process from the radical semiquinonate ligand to the metal center leads to a ls-Co~(II)(x)(Cat-N-BQ) electronic state (where x is the other ligand). Following this first step, an ultrafast ISC process (t < 200 fs) takes places, yielding the benzoquinonate isomer (hs-Co~(II)(x)(Cat-N-BQ)). In the experiments, we employed different excitation wavelengths on resonance with different absorption bands of the two samples. Excitation in the ligand-to-metal charge transfer (LMCT) band at ~520 nm and in the semiquinonate band at ~1000 nm induces the valence tautomerism (VT) in both samples. From the time evolution of the TRIR spectra, we determine the time constants of the vibrational cooling in the tautomeric state (7—14 ps) and the ground state recovery times (~350 ps for tpy and ~450 ps for DQ2). In contrast, when the pump frequency is set at 712 nm, on resonance with the benzoquinonate absorption band of the second active ligand of the DQ2, no electron transfer takes place: the TRIR spectra basically show only ground state bleaching bands and no marker band of the tautomeric conversion shows up.
机译:在这项工作中,我们通过瞬态红外光谱(TRIR)研究了两种不同的Co-二氧戊烯配合物的价互变异构过程。研究的分子是ls-Co〜(III)(Cat-N-BQ)-(Cat-N-SQ)(DQ2)和[ls-Co〜(III)(tpy)(Cat-N-SQ)] PF6 (tpy),其中Cat-NBQ = 2-(2-羟基-3,5-二叔丁基苯基亚氨基)-4,6-二叔丁基环己-3,5-二烯酮,Cat-N-SQ为双阴离子基团类似物,且tpy = 2,2'-6-2“-三联吡啶。对两种配合物的谐波频率进行DFT计算,使我们可以精确地确定用作半醌型和苯醌型异构体标记的正常模式。从自由基半奎宁酸酯配体到金属中心的单电子电荷转移过程会导致ls-Co〜(II)(x)(Cat-N-BQ)电子态(其中x是另一个配体)。 ,发生了超快ISC过程(t <200 fs),得到了苯醌醌异构体(hs-Co〜(II)(x)(Cat-N-BQ)),在实验中,我们采用了不同的激发波长两种样品的吸收带不同,在〜时的配体-金属电荷转移(LMCT)带中激发520 nm处和〜1000 nm处的半奎宁酸盐带会诱导两个样品的价互变异构(VT)。根据TRIR谱的时间演变,我们确定互变异构状态下振动冷却的时间常数(7-14 ps)和基态恢复时间(tpy约为350 ps,DQ2约为450 ps)。相反,当泵浦频率设置为712 nm时,在与DQ2的第二个活性配体的苯并奎宁酸酯吸收带共振时,不会发生电子转移:TRIR光谱基本上仅显示基态漂白带,而没有标记出现互变异构转换。

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