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Dive into the research topics where Ming Qiang Hu is active.

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Featured researches published by Ming Qiang Hu.


Dalton Transactions | 2013

Efficient photo-driven hydrogen evolution by binuclear nickel catalysts of different coordination in noble-metal-free systems.

Hong Hua Cui; Jin Yun Wang; Ming Qiang Hu; Cheng Bing Ma; Hui Min Wen; Xiao Wei Song; Chang Neng Chen

Exploration of the complex Ni2(MBD)4 (MBD = 2-mercaptobenzimidazole) (C1) having different coordinated Ni atoms as a photocatalyst for hydrogen evolution is made. For comparison, the bimetallic Ni2(MBT)4 (MBT = 2-mercaptobenthiazole) (C2) complex with the same coordinated Ni atoms was synthesized. Both of the complexes have been successfully constructed for photo-induced hydrogen production using organic dyes as photosensitizers and triethanolamine (TEOA) as the effective electron donor by visible light (>400 nm) in acetonitrile-water solution. The time-dependence of H2 generation and DFT computational studies demonstrate that the complex C1 is more active than C2 for H2 evolution. The mechanisms of photocatalytic hydrogen generation for C1 and C2 involve different protonation sites resulting from the differences between the two structures.


Inorganic Chemistry | 2011

Syntheses, structures, and magnetic properties of a family of tetra-, hexa-, and nonanuclear Mn/Ni heterometallic clusters

Hui Chen; Cheng Bing Ma; Da Qiang Yuan; Ming Qiang Hu; Hui Min Wen; Qiu Tian Liu; Chang Neng Chen

A family of Mn(III)/Ni(II) heterometallic clusters, [Mn(III)(4)Ni(II)(5)(OH)(4)(hmcH)(4)(pao)(8)Cl(2)]·5DMF (1·5DMF), [Mn(III)(3)Ni(II)(6)(N(3))(2)(pao)(10)(hmcH)(2)(OH)(4)]Br·2MeOH·9H(2)O (2·2MeOH·9H(2)O), [Mn(III)Ni(II)(5)(N(3))(4)(pao)(6)(paoH)(2)(OH)(2)](ClO(4))·MeOH·3H(2)O (3·MeOH·3H(2)O), and [Mn(III)(2)Ni(II)(2)(hmcH)(2)(pao)(4)(OMe)(2)(MeOH)(2)]·2H(2)O·6MeOH (4·2H(2)O·6MeOH) [paoH = pyridine-2-aldoxime, hmcH(3) = 2, 6-Bis(hydroxymethyl)-p-cresol], has been prepared by reactions of Mn(II) salts with [Ni(paoH)(2)Cl(2)], hmcH(3), and NEt(3) in the presence or absence of NaN(3) and characterized. Complex 1 has a Mn(III)(4)Ni(II)(5) topology which can be described as two corner-sharing [Mn(2)Ni(2)O(2)] butterfly units bridged to an outer Mn atom and a Ni atom through alkoxide groups. Complex 2 has a Mn(III)(3)Ni(II)(6) topology that is similar to that of 1 but with two corner-sharing [Mn(2)Ni(2)O(2)] units of 1 replaced with [Mn(3)NiO(2)] and [MnNi(3)O(2)] units as well as the outer Mn atom of 1 substituted by a Ni atom. 1 and 2 represent the largest 3d heterometal/oxime clusters and the biggest Mn(III)Ni(II) clusters discovered to date. Complex 3 possesses a [MnNi(5)(μ-N(3))(2)(μ-OH)(2)](9+) core, whose topology is observed for the first time in a discrete molecule. Careful examination of the structures of 1-3 indicates that the Mn/Ni ratios of the complexes are likely associated with the presence of the different coligands hmcH(2-) and/or N(3)(-). Complex 4 has a Mn(III)(2)Ni(II)(2) defective double-cubane topology. Variable-temperature, solid-state dc and ac magnetization studies were carried out on complexes 1-4. Fitting of the obtained M/(Nμ(B)) vs H/T data gave S = 5, g = 1.94, and D = -0.38 cm(-1) for 1 and S = 3, g = 2.05, and D = -0.86 cm(-1) for 3. The ground state for 2 was determined from ac data, which indicated an S = 5 ground state. For 4, the pairwise exchange interactions were determined by fitting the susceptibility data vs T based on a 3-J model. Complex 1 exhibits out-of-phase ac susceptibility signals, indicating it may be a SMM.


Dalton Transactions | 2013

Octanuclear MnIII6MnIILn (Ln = Gd, Dy and Er) clusters with a novel core topology: syntheses, structures, and magnetic properties

Hui Chen; Cheng Bing Ma; Ming Qiang Hu; Hui Min Wen; Hong Hua Cui; Jin Ying Liu; Xiao Wei Song; Chang Neng Chen

Reactions of [Mn6O2(piv)10(py)2.5(piv)1.5], Ln(NO3)3·6H2O and N-mdeaH2 in MeCN in the presence of Me3SiCl generated a family of octanuclear Mn/Ln complexes [Mn6(III)Mn(II)Ln(N-mdea)3(N-mdeaH)(piv)8O2(OH)3(NO3)(H2O)]·xCH3CN·xH2O [Ln = Gd (1), Dy (2), Er (3), pivH = pivalic acid, N-mdeaH2 = N-methyl diethanolamine]. Each complex possesses a [Mn6(III)Mn(II)Ln(μ3-O)2(μ3-OH)3](16+) core containing two butterfly-like subunits of [Mn3Ln(μ3-OH)2] and [Mn4(μ3-O)2] sharing a common vertex, and an outer Mn atom ligated to one of the subunits through a μ3-OH(-) ligand. The core topology represents a new Mn/Ln core type. The magnetic susceptibility study of 1-3 indicates the presence of dominant antiferromagnetic interactions within the complexes. For complex 1, which contains an isotropic Gd(III) atom, fitting of the obtained M/(NμB) vs. H/T data gave S = 4, g = 1.90, and D = -0.31 cm(-1). The results were further supported by ac data. Complex exhibits out-of-phase ac susceptibility signals, indicating it may be a SMM.


Dalton Transactions | 2012

Photoswitchable electrochemical behaviour of a [FeFe] hydrogenase model with a dithienylethene derivative

Hui Min Wen; Jin Yun Wang; Ming Qiang Hu; Bin Li; Zhong-Ning Chen; Chang Neng Chen

A diiron dithiolate complex 1o with a dithienylethene (DTE) phosphine ligand has been elaborately designed and fully investigated by spectroscopic and DFT computational studies. Upon irradiation with UV light, the DTE moiety in complex 1o undergoes an excellent photocyclization reaction to attain ring-closed state 1c in high yield (>95%), accompanied by a colour change from orange to deep blue. On the other hand, upon irradiation with visible light (>460 nm), ring-closed form 1c in CH(3)CN solution reverts perfectly into ring-open form 1o. Both 1o and 1c were characterised by IR, (1)H, (31)P, (19)F NMR and electrochemical spectroscopy. The electrochemical behaviours of both the open and closed forms were investigated by cyclic voltammetry. Upon photocyclization reaction, a 290 mV (from -2.29 V to -2.00 V) positive shift is induced in the potential of electrochemical catalytic proton reduction, due to the electron-withdrawing effect of the ring-closed DTE moiety. Consequently, complex 1 can reversibly photoswitch the potential of proton reduction on the [FeFe] moiety.


Dalton Transactions | 2010

Synthesis, structures and electrochemistry studies of 2Fe2S–Fe(II)(S–2N)2 models for H-cluster of [FeFe]-hydrogenase

Ming Qiang Hu; Hui Min Wen; Cheng Bing Ma; Na Li; Qing Yun Yan; Hui Chen; Chang Neng Chen

A series of model complexes [(μ-pdt)Fe(2)(CO)(5)](2)M(sip)(2) (M = Fe, Ni) were synthesized as H-cluster analogues of [FeFe]-hydrogenase. Their electrochemical behaviours were investigated and it is proposed that the bridging metal bis(tris-chelate) groups act as electron transfer sites in theses mimics.


Dalton Transactions | 2012

Efficient [FeFe] hydrogenase mimic dyads covalently linking to iridium photosensitizer for photocatalytic hydrogen evolution

Hong Hua Cui; Ming Qiang Hu; Hui Min Wen; Guo Liang Chai; Cheng Bing Ma; Hui Chen; Chang Neng Chen


Applied Organometallic Chemistry | 2014

Photocatalytic hydrogen evolution by two comparable [ FeFe]- hydrogenase mimics assembled to the surface of ZnS

Xiao Wei Song; Hui Min Wen; Cheng Bing Ma; Ming Qiang Hu; Hui Chen; Hong Hua Cui; Chang Neng Chen


Journal of Organometallic Chemistry | 2009

Terminal pyridine-N ligation at FeFe hydrogenase active-site mimic

Yue Zhang; Ming Qiang Hu; Hui Min Wen; You Tao Si; Cheng Bing Ma; Chang Neng Chen; Qiu Tian Liu


Journal of Organometallic Chemistry | 2014

Pyridyl- and pyrimidyl-phosphine-substituted [FeFe]-hydrogenase mimics: Synthesis, charaterization and properties

Hong Hua Cui; Nan Nan Wu; Jin Yun Wang; Ming Qiang Hu; Hui Min Wen; Chang Neng Chen


Dalton Transactions | 2014

A family of novel Mn3Ln4 clusters displaying single-molecule magnet behavior

Hui Chen; Cheng Bing Ma; Ming Qiang Hu; Hui Min Wen; Chang Neng Chen

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Chang Neng Chen

Chinese Academy of Sciences

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Hui Min Wen

Chinese Academy of Sciences

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Cheng Bing Ma

Chinese Academy of Sciences

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Hui Chen

Chinese Academy of Sciences

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Hong Hua Cui

Chinese Academy of Sciences

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Jin Yun Wang

Chinese Academy of Sciences

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Xiao Wei Song

Chinese Academy of Sciences

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Qing Yun Yan

Chinese Academy of Sciences

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Qiu Tian Liu

Chinese Academy of Sciences

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Bin Li

Zhejiang University

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