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氢气(H2)具有能量密度高、环境友好等优点,是一种很有前景的清洁能源载体.目前,电催化水裂解大规模制氢被认为是一种理想可行的方法.析氢反应(HER)涉及多个步骤,首先形成吸附的氢(Volmer步骤),然后是脱附步骤(Heyrovsky步骤)或两个相邻的吸附氢形成H2(Tafel步骤).与酸性介质相比,碱性介质中的HER可与现有的析氧反应(OER)催化剂偶合,降低电解水的设备成本,因此研究碱性条件下HER更具应用价值.但是,HER在碱性介质中不可避免地需要打破较强的共价键H–O–H,动力学缓慢,导致需要高过电位驱动反应.因此,开发适用于广泛的pH范围,特别是碱性介质高催化活性的催化剂,成为当务之急.金属铂是最高效的HER催化剂,但昂贵的价格严重阻碍了其在电解水中的大规模商业化应用.因此,开发过电位低和稳定性持久的非贵金属催化剂,特别是可以在大电流密度(>500 mA cm-2的质子交换膜和碱性电解槽)下稳定工作的催化剂,对实际工业应用至关重要.过渡金属磷化物(TMPs),尤其是CoP和Ni2P在HER中表现出了较好的催化活性,引起广泛关注.但是,有限的电子结构、低电导率和大电流密度测试过程中的团聚仍然是限制其实际应用的瓶颈.近年来,具有金属可调性、多孔型结构、高比表面积和多交叉开放通道的金属有机骨架(MOFs)已被证明是制备TMPs的理想前驱体.但是,在高温煅烧过程中无法避免MOF结构坍塌,导致开放通道和电导率降低,限制了电子/离子的传输以及在高电流密度下的电催化活性.本文通过TMPs和Co-MOF之间的简单拓扑化学转化制备了一种自支撑结构的N掺杂二元TMPs电催化剂(N-CoPx/Ni2P),以Co-MOF作为模板和前驱体,一部分泡沫镍原位磷化成Ni2P,形成异质结构的双金属磷化物.扫描电镜和透射电镜结果表明,该催化剂呈三维多孔结构,有利于充分暴露活性位点.通过X射线光电子能谱分析了催化剂表面化学状态,发现形成了Co–N键,说明N掺杂成功.通过电化学测试结果表明,N-CoPx/Ni2P在全pH范围内表现出较好的HER活性,尤其在碱性介质中,当电流密度为650 mA cm-2时,仅需要152 mV过电位.催化剂转化率为3.2 s-1,法拉第效率接近100%,该催化剂在200 mA cm-2电流密度下连续工作24 h无明显衰减.密度泛函理论计算表明,N-CoPx/Ni2P催化活性的增强归因于氮掺杂及双金属磷化物的协同作用提高了催化剂的本征活性位点,从而优化了氢吸附能和水结合能.综上,本文为廉价电催化剂的工业化应用提供了一种有前景的策略.  相似文献   
3.
深入了解各种功能基团与铀酰离子的络合行为有助于设计和开发高效海水提铀吸附剂. 本工作通过密度泛函理论(DFT)方法系统地研究了两种典型铀酰络合配体吡啶-2,6-二羧酸(H2DPA)和戊二酰偕亚胺二肟(H2A)与铀酰离子及碳酸根离子形成的配合物的结构、成键性质以及热力学稳定性. 研究结果表明, 所有配合物中, 配体与铀酰离子之间具有不同强度的共价相互作用. 由于H2A配位时发生了质子重排, 而且配体的解离能较高, 使其更难与[UO2(CO3)3]4-发生取代反应, 因此H2DPA配体是海水提铀中一种潜在的有效配体. 本工作的相关研究结果为海水提铀中高效吸附基团的设计和开发提供了理论线索.  相似文献   
4.
过渡金属磷化物电位低且比容量高, 是有发展前景的锂离子电池(LIBs)负极材料. 其中, ZnP2属于双活性负极材料, Zn与P都能与Li+发生反应, 储Li+性能更具有竞争力. 但是, 对于ZnP2的锂化机理及产物尚不明确. 采用第一性原理计算和电化学测试方法研究了ZnP2的电子性质和电化学性能, 通过理论计算和实验测试相结合阐述了ZnP2的锂化机制. 首先, 以密度泛函理论(DFT)计算揭示了ZnP2的锂化机理、Li+扩散路径、势垒和理论比容量(1477 mAh/g). 其次, 通过直流电弧等离子体法及固相烧结法合成ZnP2, 并测试其首圈放电曲线, 显示放电容量为1439 mAh/g, 与理论计算结果相近. 此外, 薄膜X射线衍射(XRD)检测最终产物成分为LiZn和Li3P, 与DFT计算结果一致.  相似文献   
5.
Minimalist photo-reactive probes, which consist of a photo-reactive group and a tag for detection of target proteins, are useful tools in chemical biology. Although several diazirine-based and aryl azide-based minimalist probes are available, no keto-based minimalist probe has yet been reported. Here we describe minimalist probes based on a 2-thienyl-substituted α-ketoamide bearing an alkyne group on the thiophene ring. The 3-alkyne probe showed the highest photo-affinity labeling efficiency.  相似文献   
6.
A phosphinine-borane adduct of a Me3Si-functionalized phosphinine and the Lewis acid B(C6F5)3 has been synthesized and characterized crystallographically for the first time. The reaction strongly depends on the nature of the substituents in the α-position of the phosphorus heterocycle. In contrast, the reaction of B2H6 with various substituted phosphinines leads to an equilibrium between the starting materials and the phosphinine–borane adducts that is determined by the Lewis basicity of the phosphinine. The novel phosphinine borane adduct ( 6 -B(C6F5)3) shows rapid and facile insertion and [4+2] cycloaddition reactivity towards phenylacetylene. A hitherto unknown dihydro-1-phosphabarrelene is formed with styrene. The reaction with an ester provides a new, facile and selective route to 1-R-phosphininium salts. These salts then undergo a [4+2] cycloaddition in the presence of Me3Si−C≡CH and styrene to cleanly form unprecedented derivatives of 1-R-phosphabarrelenium salts.  相似文献   
7.
A series of non-fullerene acceptors based on perylene monoimides coupled in the peri position through phenylene linkers were synthesized via Suzuki-coupling reactions. Various substitution patterns were investigated using density functional theory (DFT) calculations in combination with experimental data to elucidate the geometry and their optical and electrochemical properties. Further investigations of the bulk properties with grazing incidence wide angle X-ray scattering (GIWAXS) gave insight into the stacking behavior of the acceptor thin films. Electrochemical and morphological properties correlate with the photovoltaic performance of devices with the polymeric donor PBDB-T and a maximum efficiency of 3.17 % was reached. The study gives detailed information about structure–property relationships of perylene-linker-perylene compounds.  相似文献   
8.
Two new rod-packing metal–organic frameworks (RPMOF) are constructed by regulating the in situ formation of the capping agent. In CPM-s7, carboxylate linkers extend 1D manganese-oxide chains in four additional directions, forming 3D RPMOF. The substitution of Mn2+ with a stronger Lewis acidic Co2+, leads to an acceleration of the hydrolysis-prone sulfonate linker, resulting in presence of sulfate ions to reduce two out of the four carboxylate-extending directions, and thus forming a new 2D rod-packing CPM-s8. Density functional theory calculations and magnetization measurements reveal ferrimagnetic ordering of CPM-s8, signifying the potential of exploring 2D RPMOF for effective low-dimensional magnetic materials.  相似文献   
9.
The development of small-molecule covalent inhibitors and probes continuously pushes the rapidly evolving field of chemical biology forward. A key element in these molecular tool compounds is the “electrophilic trap” that allows a covalent linkage with the target enzyme. The reactivity of this entity needs to be well balanced to effectively trap the desired enzyme, while not being attacked by off-target nucleophiles. Here we investigate the intrinsic reactivity of substrates containing a class of widely used electrophilic traps, the three-membered heterocycles with a nitrogen (aziridine), phosphorus (phosphirane), oxygen (epoxide) or sulfur atom (thiirane) as heteroatom. Using quantum chemical approaches, we studied the conformational flexibility and nucleophilic ring opening of a series of model substrates, in which these electrophilic traps are mounted on a cyclohexene scaffold (C6H10Y with Y=NH, PH, O, S). It was revealed that the activation energy of the ring opening does not necessarily follow the trend that is expected from C−Y leaving-group bond strength, but steeply decreases from Y=NH, to PH, to O, to S. We illustrate that the HOMONu–LUMOSubstrate interaction is an all-important factor for the observed reactivity. In addition, we show that the activation energy of aziridines and phosphiranes can be tuned far below that of the corresponding epoxides and thiiranes by the addition of proper electron-withdrawing ring substituents. Our results provide mechanistic insights to rationally tune the reactivity of this class of popular electrophilic traps and can guide the experimental design of covalent inhibitors and probes for enzymatic activity.  相似文献   
10.
Nitrene transfer reactions have emerged as one of the most powerful and versatile ways to insert an amine function to various kinds of hydrocarbon substrates. However, the mechanisms of nitrene generation have not been studied in depth albeit their formation is taken for granted in most cases without definitive evidence of their occurrence. In the present work, we compare the generation of tosylimido iron species and NTs transfer from FeII and FeIII precursors where the metal is embedded in a tetracarbene macrocycle. Catalytic nitrene transfer to reference substrates (thioanisole, styrene, ethylbenzene and cyclohexane) revealed that the same active species was at play, irrespective of the ferrous versus ferric nature of the precursor. Through combination of spectroscopic (UV-visible, Mössbauer), ESI-MS and DFT studies, an FeIV tosylimido species was identified as the catalytically active species and was characterized spectroscopically and computationally. Whereas its formation from the FeII precursor was expected by a two-electron oxidative addition, its formation from an FeIII precursor was unprecedented. Thanks to a combination of spectroscopic (UV-visible, EPR, Hyscore and Mössbauer), ESI-MS and DFT studies, we found that, when starting from the FeIII precursor, an FeIII tosyliodinane adduct was formed and decomposed into an FeV tosylimido species which generated the catalytically active FeIV tosylimide through a comproportionation process with the FeIII precursor.  相似文献   
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