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51.
SN2反应中 ,底物上的大基团会使反应速率明显降低。以前认为该现象完全源于位阻效应 ;但国外新近的研究结果显示 ,该现象的产生应当是溶剂化效应和位阻效应共同作用的结果 ,且溶剂化效应的贡献可能更大 相似文献
52.
Bisphosphinoaryl ruthenium(Ⅱ)compounds are synthesized using two distinct synthetic routes.One route,direct cycloruthenation,consists of the reaction of the parent arene compound R-PCHP with [RuCl2(PPh3)3]in chlorinated solvents.However,this route suffers from major drawbacks because HCl is formed as well as free triphenylphoshine.The other route,the transcyclometalation reaction,involves the interconversion of one cyclometalated ligand metal complex,[RuCl(NCN)(PPh3)],into another complex,[RuCl(R-PCP)(PPh3)],with concomitant consumption and formation of the corresponding arenes R-PCHP and NCHN,respectively. 相似文献
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固氮酶及合成氨Fe催化剂中N2的络合位 总被引:1,自引:0,他引:1
用乙烯为探针研究了固氮酶中N2的键合位,结果表明,乙烯不能与N2在固氮酶体系中相竞争,提出N2在固氮酶中键合位很可能是蛋白键合FeMo-co笼内6Fe位的μρ(η^2,ε4)t 3Fe+1Mo位的μ4(η^3,ε)方式,而不是笼口2Fe位的μ2(η^2)方式,在合成氨Fe催化剂中N2的络事方式可能是μ6(η^3,ε3 )。 相似文献
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在过去的近十年中,各种新型原位表征技术和反应器设计被应用于多相催化过程和催化材料的合成研究中,并获得了许多新认识.特别是最近几年,利用原位、共振拉曼光谱技术对分子筛合成关键物种检测、杂原子分子筛催化活性位的研究取得了一系列进展.这些技术的应用使得从分子水平认识复杂的多孔材料成为可能:从合成初期碎片基元检测、碎片相互连接的关键化学键到预组装类微孔结构;从高度隔离过渡金属中心到配位化学键断裂生成活性中间物种,再到完成催化反应循环.这为设计特定功能和结构的催化材料及高选择性的活性中心奠定了坚实的基础. 相似文献
57.
在氩气保护下,以邻位-碳硼烷、正丁基锂、硒粉和CpCo(CO)I2为起始原料,合成、分离得到配合物CpCo(Se2C2B10H10)(1)、(CpCo)2(Se2C2B10H10)(2)和(CpCo)4(μ3-Se)4Co2(μ3-Se2C2B10H10)4Co·CH2Cl2(3),并用元素分析、质谱、IR、1H NMR及X-射线单晶衍射对配合物(3)进行了表征。晶体属正交晶系,空间群P212121,其晶胞参数为:a=1.30720(13)nm,b=1.39137(11)nm,c=3.88533(15)nm,β=90°,Z=4,V=7.0666(9)nm3,μ=7.890mm-1,Dc=2.138g·cm-3,F(000)=4268,R1=0.0543,wR2=0.1363。配合物中4个(Se2C2B10H10)2-配体和4个单硒基团形成了1个Co7Se12核。 相似文献
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设计合成了14个4位芳环取代的嘧啶磺酰脲衍生物,其结构均通过1H NMR和高分辨质谱表征确定,并进行了体外抑菌活性测试.初步测试结果表明,在浓度为50 mg/L时,大部分目标化合物对黄瓜灰霉病、油菜菌核病和水稻纹枯病表现出一定的抑菌效果,其中化合物7g,7h和7i表现出较高的抑菌活性;但大部分目标化合物对黄瓜枯萎病、黄瓜褐斑病及苹果轮纹病的抑菌活性与对照药百菌清尚有差距. 相似文献
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Shaopeng Li Jing Du Bin Zhang Yanzhen Liu Qingqing Mei Qinglei Meng Minghua Dong Juan Du Zhijuan Zhao Lirong Zheng Buxing Han Meiting Zhao Huizhen Liu 《物理化学学报》2023,38(10):2206019
Selective hydrogenation is a vital class of reaction. Various unsaturated functional groups in organic compounds, such as aromatic rings, alkynyl (C≡C), carbonyl (C=O), nitro (-NO2), and alkenyl (C=C) groups, are typical targets in selective hydrogenation. Therefore, selectivity is a key indicator of the efficiency of a designed hydrogenation reaction. 5-(Hydroxymethyl)furfural (HMF) is an important platform compound in the context of biomass conversion, and recently, the hydrogenation of HMF to produce fuels and other valuable chemicals has received significant attention. Controlling the selectivity of HMF hydrogenation is paramount because of the different reducible functional groups (C=O, C-OH, and C=C) in HMF. Moreover, the exploration of new routes for hydrogenating HMF to valuable chemicals is becoming attractive. 5-Methylfurfural (MF) is also an important organic compound; thus, the selective hydrogenation of HMF to MF is an essential synthetic route. However, this reaction has challenging thermodynamic and kinetic aspects, making it difficult to realize. Herein, we propose a strategy to design a highly efficient catalytic system for selective hydrogenation by exploiting the synergy between steric hindrance and hydrogen spillover. The design and preparation of the Pt@PVP/Nb2O5 catalyst (PVP = polyvinyl pyrrolidone; Nb2O5 = niobium(V) oxide) were also conducted. Surprisingly, HMF could be converted to MF with 92% selectivity at 100% HMF conversion. The reaction pathway was revealed through the combination of control experiments and density functional theory calculations. Although PVP blocked HMF from accessing the surface of Pt, hydrogen (H2) could be activated on the surface of Pt due to its small molecular size, and the activated H2 could migrate to the surface of Nb2O5 through a phenomenon called H2 spillover. The Lewis acidic surface of Nb2O5 could not adsorb the C=O group but could adsorb and activate the C-OH group of HMF; therefore, when HMF was adsorbed on Nb2O5, the C-OH groups were hydrogenated by the spilled over H2 to form MF. The high selectivity of this reaction was realized because of the unique combination of steric effects, hydrogen spillover, and tuning of the electronic states of the Pt and Nb2O5 surfaces. This new route for producing MF has great potential for practical application owing to its discovered advantages. We believe that this novel strategy can be used to design catalysts for other selective hydrogenation reactions. Furthermore, this study demonstrates a significant breakthrough in selective hydrogenation, which will be of interest to researchers working on the utilization of biomass, organic synthesis, catalysis, and other related fields.
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