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71.
田维娜  徐亮  韦玉  李鹏飞 《有机化学》2023,(5):1792-1798
报道了一种N,O-螯合型B,B-二芳基四配位硼络合物的制备方法.以稳定、易得的芳基氟硼酸钾(Ar BF3K)为二芳基硼(Ar2B)结构单元的来源,异喹啉-3-羧酸为N,O-螯合配体的前体,在锰、对甲苯磺酰氯、碱存在下即可获得异喹啉-3-羧酸根螯合的二芳基硼络合物.该体系具有良好的底物适用性和官能团兼容性,为合成二芳基硼络合物提供了一条便捷、高效的反应路径.  相似文献   
72.
报道了一种在Rh2(OAc)4存在下α-亚胺卡宾和吡唑啉酮的高效C—H官能团化反应.该方法通过C—C键的形成为构建结构多样的3-吡唑基吲哚化合物提供了一种快速、直接的途径,反应具有中等至优异的产率和良好的官能团耐受性.  相似文献   
73.
从空间位阻角度出发,设计并合成了H型芴基小分子材料3Ph-TrH,并通过溶液加工方法制备了将其作为电荷捕获层的浮栅型有机场效应晶体管(OFET)存储器.结果表明,该器件的空穴和电子存储窗口分别为31.2和11.6V,实现了基于单个小分子材料的双极性电荷存储.为了提高器件的稳定性,进一步制备了基于3Ph-TrH与聚苯乙烯(PS)掺杂薄膜的浮栅型OFET存储器.测试结果显示,该器件比基于3Ph-TrH作为单组分电荷捕获层的器件具有更高的稳定性和耐受性,在10000s的维持时间测试后,该器件的电流开关比还能维持在1.1×103.该工作为制备新型双极性电荷存储的OFET存储器提供了一条思路.  相似文献   
74.
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.   相似文献   
75.
In view of the continuously worsening environmental problems, fossil fuels will not be able to support the development of human life in the future. Hence, it is of great importance to work on the efficient utilization of cleaner energy resources. In this case, cheap, reliable, and eco-friendly grid-scale energy storage systems can play a key role in optimizing our energy usage. When compared with lithium-ion and lead-acid batteries, the excellent safety, environmental benignity, and low toxicity of aqueous Zn-based batteries make them competitive in the context of large-scale energy storage. Among the various Zn-based batteries, due to a high open-circuit voltage and excellent rate performance, Zn-Ni batteries have great potential in practical applications. Nevertheless, the intrinsic obstacles associated with the use of Zn anodes in alkaline electrolytes, such as dendrite, shape change, passivation, and corrosion, limit their commercial application. Hence, we have focused our current efforts on inhibiting the corrosion and dissolution of Zn species. Based on a previous study from our research group, the failure of the Zn-Ni battery was caused by the shape change of the Zn anode, which stemmed from the dissolution of Zn and uneven current distribution on the anode. Therefore, for the current study, we selected K3[Fe(CN)6] as an electrolyte additive that would help minimize the corrosion and dissolution of the Zn anode. In the alkaline electrolyte, [Fe(CN)6]3– was reduced to [Fe(CN)6]4– by the metallic Zn present in the Zn-Ni battery. Owing to its low solubility in the electrolyte, K4[Fe(CN)6] adhered to the active Zn anode, thereby inhibiting the aggregation and corrosion of Zn. Ultimately, the shape change of the anode was effectively eliminated, which improved the cycling life of the Zn-Ni battery by more than three times (i.e., from 124 cycles to more than 423 cycles). As for capacity retention, the Zn-Ni battery with the pristine electrolyte only exhibited 40% capacity retention after 85 cycles, while the Zn-Ni battery with the modified electrolyte (i.e., containing K3[Fe(CN)6]) showed 72% capacity retention. Moreover, unlike conventional organic additives that increase electrode polarization, the addition of K3[Fe(CN)6] not only significantly reduced the charge-transfer resistance in a simplified three-electrode system, but also improved the discharge capacity and rate performance of the Zn-Ni battery. Importantly, considering that this strategy was easy to achieve and minimized additional costs, K3[Fe(CN)6], as an electrolyte additive with almost no negative effect, has tremendous potential in commercial Zn-Ni batteries.  相似文献   
76.
以GdPO4为基质,Sm3+为激活剂,采用水热法合成了纳米荧光粉前驱体,分别在800、900、1 000、1 100和1 200℃下焙烧,得到一系列GdPO4∶Sm3+荧光粉。首先探究了GdPO4∶Sm3+的最佳焙烧温度;其次研究了Sm3+掺杂浓度对GdPO4∶Sm3+荧光性能的影响;最后研究了GdPO4∶2% Sm3+的高温荧光性能和磁性能。使用X射线衍射仪(XRD)、扫描电子显微镜(SEM)、磁强计和荧光分光光度计(FL)对荧光粉的晶体结构、形貌、发光和磁性能进行了表征。结果表明:荧光粉的晶体结构由前驱体六方晶系GdPO4·H2O∶Sm3+变为单斜晶系的GdPO4∶Sm3+,形貌由纳米棒变为无规则块体。当焙烧温度为1 000℃,Sm3+掺杂浓度为2%时,荧光粉的发光强度和荧光寿命达到最大值。GdPO4∶2% Sm3+中Sm3+之间能量传递类型为电偶极-电偶极相互作用,能量传递的临界距离为1.646~1.884 nm。最佳样品GdPO4∶2% Sm3+有优异的热稳定性,热猝灭活化能为-0.157 eV,且具有良好的顺磁性,质量磁化率值为1.22×10-4 emu·g-1·Oe-1。  相似文献   
77.
采用毒性小、环境友好的乙二醇甲醚(ethylene glycol monomethyl ether,EGME)与水混合的双溶剂(体积比为1∶1)溶解CsBr,通过提高CsBr的溶解度,减少了后续CsBr的甲醇溶液的旋涂遍数,简化了电池制备流程。通过优化CsBr的甲醇溶液的旋涂遍数发现,在旋涂1遍200 mg·mL-1 CsBr的水/EGME溶液的基础上旋涂2遍15 mg·mL-1 CsBr的甲醇溶液,所制备的CsPb-Br3钙钛矿太阳能电池(perovskite solar cells,PSCs)拥有最佳的性能,实现了1.44 V的开路电压(open-circuit voltage,VOC),6.26mA·cm-2的短路电流密度(short circuit current density,JSC),74.57%的填充因子(fill factor,FF)及最高6.72%的光电转换效率(pho-toelectric conversion efficiency,PCE)。  相似文献   
78.
通过高温煅烧ZnSn(OH)6前驱体制备了双壳中空立方体结构的ZnSnO3(ZSO),进而采用水热法将CdIn2S4(CIS)纳米晶包裹在ZSO表面,成功制备了CdIn2S4/ZnSnO3(CIS/ZSO)异质催化剂。活性产氢实验结果表明,CIS、ZSO物质的量之比为12%时制备的12% CIS/ZSO具有优异的光催化产氢性能,在3 h内产氢量为1 676.48 μmol·g-1,分别是ZSO和CIS的12倍和8倍。ZSO光催化析氢反应活性的增强归因于CIS/ZSO异质结构的成功构建,异质界面的形成显著提高了光生电子/空穴对的分离效率,降低了其复合率。通过对电荷转移路径的分析,提出了可能的反应机理。  相似文献   
79.
采用具有白磷钙矿结构的磷酸盐作为目标产物,通过高温固相法制备了发光颜色可调的Ca8MgBi(PO4)7∶Ce3+,Tb3+荧光粉。利用X射线粉末衍射(XRD)、扫描电子显微镜(SEM)和荧光光谱等表征手段对其物相组成、微观形貌及发光性能进行了详细研究。结果表明:掺杂少量的Ce3+、Tb3+并没有改变Ca8MgBi(PO4)7基质的晶体结构。荧光光谱和荧光寿命曲线确定了Ce3+-Tb3+之间存在能量传递,其能量传递机制为四极-四极相互作用,能量传递效率可达81%。固定Ce3+浓度而逐渐增加Tb3+的掺杂量时,系列Ca8MgBi(PO4)7∶0.08Ce3+,yTb3+荧光粉的发...  相似文献   
80.
魏婧宇  刘利  卢金荣 《分子催化》2023,37(5):439-451
半导体光催化制氢是一种可实现持续制备和储存氢气的绿色技术.石墨相氮化碳(g-C3N4)是研究广泛的光催化剂,但其仍存在光利用率低、光生电子和空穴易复合等问题,制约着光催化产氢的性能.利用给电子卟啉修饰g-C3N4,构建了四(4-羧基)苯基卟啉(TCPP)以共价/非共价方式修饰g-C3N4的催化剂.卟啉共价修饰g-C3N4(gC3N4-TCPP0.1)及非共价复合结构(TCPP0.1/g-C3N4)光催化产氢速率分别为6 997和5 399μmol·g-1·h-1,较g-C3N4分别提高了53%和18%. TCPPx/g-C3N4异质结加强了界面接触,促进了电荷转移,增强了可见光吸收能力,进而提高了光催化制氢性能. g-C3N4-TCPPx中, TCPP的接枝拓展了共轭结构,优化了电子结构,增大了分子偶极,促进了电荷分离,共价桥键为电荷传输提供了通道.  相似文献   
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