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1.
以邻苯二胺为表面活性剂,通过水热釜法一步制备凹形树突状PtCu双金属纳米催化剂(PtCu NCDs)。PtCu NCDs在电催化甲醇氧化(MOR)的应用中表现出非常高的活性和很强的抗有毒中间体作用。PtCu NCDs对于甲醇氧化的质量活性为(0.53 A·mg-1 Pt)是商业Pt/C(0.26 A·mg-1 Pt)的2.04倍。从比活性的CV曲线图对比发现PtCu NCDs(1.07 mA·cm-2)是商业Pt/C(0.55 mA·cm-2)的1.95倍。而且,PtCu NCDs(2.76)比商业Pt/C催化剂(1.02)表现出更高的If/Ib比值。这些优异的电催化活性可能归功于PtCu NCDs特殊的凹形树突状形貌。  相似文献   

2.
我们通过热注入的方法制备了一种高CO耐性的金属间PtBi纳米片。所制备的金属间PtBi纳米片在甲醇氧化反应(MOR)中展现出优异的催化性能和良好的稳定性能,最大的质量活性高达4.09 A·mgPt-1,接近商业Pt/C的3.2倍。计时电流-时间(I-t)稳定性测试之后,活性仅仅衰减5.7%,远低于商业Pt/C。CO吸附-脱附(CO-Stripping)曲线和循环伏安演变(CV-Evolution)曲线证实了金属间PtBi纳米片高的CO耐受性。  相似文献   

3.
以F127为模板剂,NiCl2为镍源,尿素为氮源,间苯二酚甲醛原位聚合树脂为碳源,分别采用均相法和两相法制备Ni-N-OMC-1,Ni-N-OMC-2纳米复合材料.X射线衍射(XRD)、激光拉曼以及透射电子显微镜(TEM)等测试结果表明,复合材料具有有序介孔结构,Ni以金属微粒形式嵌于碳骨架中,提高了有序介孔碳的石墨化程度.X射线光电子能谱测试(XPS)表明尿素热解后以4种形式存在:sp3杂化与C结合的N原子,吡啶N原子,sp2杂化与C结合的N原子以及quaternary-N原子.Ni-N的共改性改变了碳载体的理化性质,有利于Pt纳米粒子的负载与分散.均相法制备的Ni-N-OMC-1复合材料微波负载Pt后,氧还原极限电流密度为5.32mA·cm-2,氢氧化电化学活性面积高达138.53m2·g-1,电化学催化活性优于商业20%Pt/C材料(4.49mA·cm-2,96.98m2·g-1).  相似文献   

4.
通过在 N-甲基吡咯烷酮(NMP)有机溶剂中锌电极与 CuI之间的置换反应,在锌电极上原位构建了一层致密且疏水的铜金属保护层(Cu@Zn)。铜金属保护层能有效地隔离锌电极与电解液的接触,减少锌电极-电解液界面的析氢和腐蚀等副反应。同时,铜金属保护层还具有较好的亲锌性,更小的界面电阻,更低的成核能垒,有利于锌离子均匀沉积,从而有效抑制了锌枝晶的生成。Cu@Zn对称电池实现了超过 1 700 h(1 mA·cm-2)和 1 330 h(3 mA·cm-2)的循环寿命。采用商用 MnO2与之匹配得到的Cu@Zn||MnO2全电池不仅在1 A·g-1下具有168.5 mAh·g-1的可逆比容量,还可稳定循环2 000次以上。  相似文献   

5.
将三聚氰胺、RuCl3及炭黑以一定的比例分散于乙醇中,采用旋转蒸干及高温热处理合成了一种氮掺杂碳(NC)负载Ru的Ru/NC 催化剂。采用硼氢化钠液相化学还原法合成了不同 Pt、Ru 负载量的 PtRu/NC 催化剂,并用于电催化甲醇氧化反应(MOR)及电催化分解水析氢反应(HER)。结果表明,合成的催化剂中 Pt1Ru/NC(Pt、Ru的实际负载量分别为 1.14%、0.54%)表现出最优的MOR性能,质量活性达4.96 A·mg-1PtRu,且经10 000 s稳定性测试后质量活性保持在测试前的91.1%。同时,当电流密度为100 mA·cm-2时,Pt1Ru/NC在HER中表现出最低的过电位(103 mV)和最小的Tafel斜率(15.29 mV·dec-1)。通过X射线衍射(XRD)、X射线光电子能谱(XPS)、透射电子显微镜(TEM)、扫描透射电子显微镜(STEM)、电感耦合等离子体发射光谱(ICP‐OES)、STEM‐能谱(STEM‐EDS)技术PtRu/NC双金属催化剂,其具有优异催化性能的原因如下:(1) PtRu双金属纳米颗粒高度分散于NC上;(2) Pt以纳米团簇或单原子形式负载于Ru上,后负载于NC,形成了Pt‐Ru相分离结构;(3) Pt、Ru与N之间存在协同效应。  相似文献   

6.
以Ni (Ac)2·4H2O和生物质材料丝瓜络为原料,通过先浸渍后热解的方法制备了低成本的镍纳米颗粒/丝瓜络衍生氮掺杂多孔碳纳米复合材料(Ni/T-dNPCN)。研究复合材料对甲醇的电催化性能,并讨论热解温度对复合材料结构和性能的影响。结果表明,Ni/T-dNPCN修饰玻碳电极(GCE)在碱性条件下对甲醇氧化反应(MOR)具有良好的电催化活性。其中,800℃煅烧得到的Ni/T-dNPCN800/GCE对1 mol·L-1甲醇具有最低的起始电位(0.344 V (vs Ag/AgCl))、最高的催化电流密度(质量活性:1 902 mA·mgNi-1;比活性:1.61 mA·cm-2)和最快的动力学反应过程(Tafel斜率:50.23 mV·dec-1),其催化活性约为商业化Pt/C/GCE的3.92倍。且计时电流测试表明,Ni/T-dNPCN800/GCE具有良好的稳定性。  相似文献   

7.
采用原位溶剂热生长法设计合成了锌掺杂Co9S8纳米颗粒。各种表征技术和性能测试结果表明:锌掺杂Co9S8纳米颗粒的孔尺寸为18 nm,比表面积为23 m2·g-1;同时微量的锌掺杂显著增强了Co9S8的电催化析氢(HER)活性及电容器性能。在HER性能测试中,当电流密度为10 mA·cm-2时电位为-361 mV,电流密度最高可达38.26 mA·cm-2,且具有优异的循环稳定性。同时在电容器性能测试中具有较高的比电容,当电流密度为1 A·g-1时,质量比电容和面积比电容分别为235.48 F·g-1和812.4 mF·cm-2。  相似文献   

8.
左琦  马龙飞 《无机化学学报》2023,39(10):1869-1876
采用缓慢挥发溶剂的方法合成了硫原子桥联芳基取代四硫富瓦烯(Ar-S-TTF)与碘的3种电荷转移复合物(1)(I3)·I2、(2)(I5)·I2和(32+)(I3)2,采用单晶X射线衍射、紫外可见光谱、循环伏安对其进行了表征。复合物(1)(I3)·I2C2/c空间群,1呈椅式构型。化合物1与碘之间在溶液中和复合物中电荷转移一致。复合物(2)(I5)·I2P1空间群,2呈椅式构型。复合物(32+)(I3)2Pbca空间群,32+呈独特的平面构型。化合物23与碘之间在溶液中和复合物中呈现不同的电荷转移。复合物中聚碘阴离子呈现不同的堆积结构:由I3-或I5-/I2组成的一维链状和I3-/I2组成的二维网格状。  相似文献   

9.
通过在 CsPbBr3薄膜上旋涂一次 I2的异丙醇溶液以修饰 CsPbBr3吸光层,钝化 CsPbBr3层表面缺陷,改善 CsPbBr3薄膜形貌。同时通过利用环境友好的绿色溶剂水溶解 CsBr,显著提高了其溶解度,减少了旋涂次数,简化了电池制备流程。实验结果表明,在CsPbBr3钙钛矿太阳能电池(perovskite solar cells,PSCs)中,使用5 mg·mL-1 I2的异丙醇溶液界面修饰的器件具有最佳光伏性能,其最高开路电压(open-circuit voltage,VOC)为1.55 V,短路电流密度(short circuit current density,JSC)为7.45 mA·cm-2,填充因子(fill factor,FF)为85.54%,光电转换效率(photoelectric conversion efficiency,PCE)达到了9.88%。  相似文献   

10.
The two title coordination compounds, (NH4)3[TbIII(ttha)]·5H2O (ttha = triethylenetetramine-N,N,N′,N″,N‴,N‴-hexaacetic acid) and (NH4)4[Tb 2 III (ttha)]·9H2O (dtpa = diethylenetriamine-N,N,N′,N″,N″-pentaacetic acid), have been prepared and characterized by FT-IR, elemental analyses, TG-DTA and single crystal X-ray diffraction techniques. The (NH4)3[TbIII(ttha)]·5H2O compound is monoclinic, P21/c; a = 10.398(1) Å, b = 12.791(1) Å, c = 23.199(2) Å; β = 90.914(2)°; V = 3084.9(5) Å3; Z = 4; D calc = 1.704 g/cm3; μ(MoK α ) = 2.376 mm; R = 0.023 and wR 2 = 0.049 for 5429 observed reflections with I ≥ 2σ(I). The [TbIII(ttha)]3− complex anion in the crystal has a nine-coordinate mononuclear molecular structure with pseudo-monocapped square-antiprismatic configuration. The (NH4)4[Tb 2 III (dtpa)2]·9H2O compound is triclinic, P-1; a = 9.739(1) Å, b = 10.010(1) Å, c = 12.968(2) Å; α= 85.890(2)°, β = 77.338(2)°, γ = 77.587(2)°; V = 1204.2(2) Å3; Z = 1; D calc = 1.832 g/cm3; μ(MoK α ) = 3.015 mm; R = 0.024 and wR 2 = 0.060 for 4750 observed reflections with I ≥ 2σ(I). The [Tb 2 III (dtpa)2]4− complex anion has a binuclear structure in the crystal; the two TbIII centers are equivalent and have a nine-coordinate environment with the same pseudo-tricapped trigonal-prismatic configuration. The thermal analysis revealed that the coordination cores of the (NH4)3[TbIII(ttha)]·5H2O and (NH4)4[Tb 2 III (dtpa)2]·9H2O compounds are stable up to 221°C and 252°C, respectively. Original Russian Text Copyright ? 2008 by J. Wang, X. Zh. Liu, X. F. Wang, G. R. Gao, Zh. Q. Xing, X. D. Zhang, and R. Xu The text was submitted by the authors in English. Zhurnal Strukturnoi Khimii, Vol. 49, No. 1, pp. 81–89, January–February, 2008.  相似文献   

11.
我们通过热注入的方法制备了一种高CO耐性的金属间PtBi纳米片。所制备的金属间PtBi纳米片在甲醇氧化反应(MOR)中展现出优异的催化性能和良好的稳定性能,最大的质量活性高达4.09 A·mgPt-1,接近商业Pt/C的3.2倍。计时电流-时间(I-t)稳定性测试之后,活性仅仅衰减5.7%,远低于商业Pt/C。CO吸附-脱附(CO-Stripping)曲线和循环伏安演变(CV-Evolution)曲线证实了金属间PtBi纳米片高的CO耐受性。  相似文献   

12.
Alloying high-cost Pt with transition metals has been considered as an effective route to synthesize the electrocatalysts with low Pt loading and excellent activity towards oxygen reduction reaction (ORR) under acid solution. The galvanic replacement method, as featured with efficiency and simplicity, is widely reported to produce Pt-based bimetallic alloys and thereby declare the significance of reductive transition metal precursor on the enhancement of ORR performance. Herein, mix-phased Cu−Cu2O precursor was applied to prepare carbon black supported highly dispersed PtCu alloy nanoparticles (PtCu/C). The proper Cu−Cu2O ratios can exactly facilitate the generation of small sized PtCu alloy nanoparticles with regulated bimetallic content. Meanwhile, the Cu2O phase is revealed to benefit the electron transfer from Pt to Cu and thus improve the intrinsic activity of Pt active sites. And the metallic Cu can favor the promotion of electrochemical active surface area. Consequently, the as-prepared PtCu/C behaves impressive ORR activity with half-wave potential of 0.88 V (vs. RHE) and mass activity of 0.49 A cm−2 mgPt−1 at 0.8 V, which is 9.8 times of commercial Pt/C catalysts. Our work will offer helpful advices for the development and regulation of novel Pt-based alloy materials towards diverse electrocatalysis.  相似文献   

13.
采用硼氢化钠还原的方法合成了碳纳米管负载的钯基纳米催化剂(Pd/CNT,Pd7Ag3/CNT,Pd7Sn2/CNT,Pd7Ag1Sn2/CNT,Pd7Ag2Sn2/CNT和Pd7Ag3Sn2/CNT)。通过XRD,TEM和XPS对其进行了表征,结果表明,相比Pd/CNT和Pd-Ag(或Pd-Sn)催化剂的纳米颗粒,Pd-Ag-Sn催化剂展现出了更小的平均颗粒尺寸(2.3 nm)。此外,还通过循环伏安(CV)和计时电流法(CA)测试了这些催化剂对甲酸氧化的电活性,在酸碱介质中,Pd-Ag-Sn/CNT对甲酸氧化都表现出了更高的电流密度。其中,Pd7Ag2Sn2/CNT催化剂在酸碱介质中的电流密度分别是108.8和211.3 mA·cm-2,相应的Pd质量电流密度高达1 364和2 640 mA·mg-1,远远高于商业Pd/C,表明Pd-Ag-Sn/CNT催化剂对甲酸氧化表现出了极好的电催化活性。  相似文献   

14.
利用逐步合成的方法,合成了一系列不同量硝酸处理的PtCo/C催化剂。通过燃料电池测试装置对催化剂进行了测试,结果表明PtCo/C催化剂在较低载量情况下,有着很好的性能:在50 kPa背压下,0.9 V下的电流密度达到44 mA·cm-2,0.8 V下的电流密度超过300 mA·cm-2;200 kPa背压下,最高功率密度超过1 300 mW·cm-2。通过X射线衍射(XRD)、透射电子显微镜(TEM)对合成的PtCo/C催化剂的形貌、组成进行了表征。XRD结果表明,催化剂中,Pt以Pt3Co和Pt颗粒形式存在。燃料电池测试结果表明,这一系列的催化剂中,经2 mL质量分数65%的浓硝酸配制的水溶液处理过的PtCo/C催化剂,具有最好的燃料电池性能以及良好的稳定性。  相似文献   

15.
A simple and green approach to synthesize highly active electro-catalysts for methanol oxi- dation reaction (MOR) without using any organic agents is described. Pt nanoparticles are directly deposited on the pre-cleaned and pre-oxidized multiwall carbon nanotubes (MWC- NTs) from Pt salt by using CO as the reductant. MOR activity has been characterized by both cyclic voltammetry and chronoamperometry, the current density and mass specific current at the peak potential (ca. 0.9 V vs. RHE) reaches 11.6 mA/cm^2 and 860 mA/mgpt, respectively. After electro-deposition of Ru onto the Pt/MWCNTs surface, the catalysts show steady state mass specific current of 20 and 80 mA/mgpt at 0.5 and 0.6 V, respectively.  相似文献   

16.
通过Adams方法成功制备MnO2-0.39IrOx(0.39为Ir/Mn的原子比)催化剂并将其用于酸性介质中高效析氧反应(OER)。电化学测试发现,MnO2-0.39IrOx仅需253 mV的过电势即可驱动10 mA·cm-2的水氧化电流密度,并可稳定运行200 h。在1.50 V(vs RHE)电势下,MnO2-0.39IrOx的贵金属Ir的质量活性为61.3 mA·mg-1,是IrO2的35.8倍,说明MnO2掺杂大大提升了贵金属利用率。结构分析发现MnO2-0.39IrOx独特的片状结构大幅度提高了催化剂的电化学活性表面积,并且Ir位点与Mn位点之间存在一定的电子相互作用。催化过程分析表明,MnO2-0.39IrOx表面出现一定的重构现象,并且Mn组分对Ir位点的化学环境实现了持续优化,从而实现了催化剂的高效酸性OER性能。  相似文献   

17.
A simple, scalable route for the generation of mesoporous Rh particles by chemical reduction on self-assembled block-copolymer micelle templates was reported recently (Nat. Commun. 2017 , 8, 15581). Here, this concept is extended to generate mesoporous PtCu alloy nanoparticles through the same approach. The PtCu alloy particles possess high-surface-area nanoporous architectures and good chemical stability for applications in catalysis. Both the composition and diameter of the bimetallic PtCu nanoparticles can be controlled by adjusting the amount of precursor in the reaction, which affects the electrochemical properties of the material. The combination of the mesoporous structure with the synergistic bimetallic electronic effects of PtCu gives rise to enhanced activity for the catalytic oxidation of methanol compared with commercial Pt black.  相似文献   

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