Yadav Jitendra Kumar, Singh Baghendra, Mishra Anjali, Pal Sarvesh Kumar, Singh Nanhai, Lama Prem, Indra Arindam, Kumar Kamlesh
Department of Chemistry, Institute of Science, Banaras Hindu University, Varanasi 221005, India.
Department of Chemistry, Indian Institute of Technology (BHU), Varanasi, UP-221005, India.
Dalton Trans. 2024 Oct 15;53(40):16747-16758. doi: 10.1039/d4dt00650j.
Three new molecular cobaloxime complexes with the general formula [ClCo(dpgH)L] (1-3), where L1 = -(4-pyridylmethyl)-1,8-naphthalimide, L2 = 4-bromo--(4-pyridylmethyl)-1,8-naphthalimide, L3 = 4-piperidin--(4-pyridylmethyl)-1,8-naphthalimide, have been synthesized and characterized by UV-Vis, multinuclear NMR, FT-IR and PXRD spectroscopic techniques. The crystal structures of all complexes have also been reported. The electrocatalytic activity of complexes is investigated under two catalysis conditions: (i) homogeneous conditions in acetonitrile using acetic acid (AcOH) as a proton source and (ii) heterogeneous conditions upon immobilization onto the surface of activated carbon cloth (CC). Complex 3 exhibited high electrocatalytic HER activity under both homogeneous and heterogeneous conditions. It catalyses proton reduction to molecular hydrogen in acetonitrile solution at a lower overpotential (640 mV) with a high turnover frequency (TOF) of 524.57 s and demonstrates good stability in acidic conditions. Furthermore, catalytic (working) electrodes are prepared by immobilizing the complexes onto the surface of activated carbon cloth (CC) for electrocatalytic HER under heterogeneous conditions. An impressive HER performance was again obtained with catalytic electrode 3@CC in 1.0 M KOH, achieving a current density of -10 mA cm at an overpotential of 262 mV. Chronoamperometric (CA) studies showed no significant decay of the initial current density for 10 h, indicating the excellent stability of 3@CC. Additionally, UV-Vis and NMR spectral studies of the recovered catalyst after electrocatalysis revealed no structural changes, demonstrating its robustness under reaction conditions.
合成了三种通式为[ClCo(dpgH)L](1 - 3)的新型分子钴胺肟配合物,其中L1 = -(4 - 吡啶基甲基)-1,8 - 萘二甲酰亚胺,L2 = 4 - 溴 - -(4 - 吡啶基甲基)-1,8 - 萘二甲酰亚胺,L3 = 4 - 哌啶基 - -(4 - 吡啶基甲基)-1,8 - 萘二甲酰亚胺,并通过紫外 - 可见光谱、多核核磁共振、傅里叶变换红外光谱和粉末X射线衍射光谱技术对其进行了表征。还报道了所有配合物的晶体结构。在两种催化条件下研究了配合物的电催化活性:(i)在乙腈中以乙酸(AcOH)作为质子源的均相条件下,以及(ii)固定在活性炭布(CC)表面的非均相条件下。配合物3在均相和非均相条件下均表现出高的电催化析氢活性。它在乙腈溶液中以较低的过电位(640 mV)催化质子还原为分子氢,具有524.57 s的高周转频率(TOF),并在酸性条件下表现出良好的稳定性。此外,通过将配合物固定在活性炭布(CC)表面制备催化(工作)电极,用于非均相条件下的电催化析氢。催化电极3@CC在1.0 M KOH中再次获得了令人印象深刻的析氢性能,在262 mV的过电位下实现了 - 10 mA cm的电流密度。计时电流法(CA)研究表明,初始电流密度在10 h内没有明显衰减,表明3@CC具有优异的稳定性。此外,电催化后回收催化剂的紫外 - 可见光谱和核磁共振光谱研究表明没有结构变化,证明了其在反应条件下的稳健性。