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1.
Herein, we report a Mott-Schottky catalyst by entrapping cobalt nanoparticles inside the N-doped graphene shell (Co@NC). The Co@NC delivered excellent oxygen evolution activity with an overpotential of merely 248 mV at a current density of 10 mA cm–2 with promising long-term stability. The importance of Co encapsulated in NC has further been demonstrated by synthesizing Co nanoparticles without NC shell. The synergy between the hexagonal close-packed (hcp) and face-centered cubic (fcc) Co plays a major role to improve the OER activity, whereas the NC shell optimizes the electronic structure, improves the electron conductivity, and offers a large number of active sites in Co@NC. The density functional theory calculations have revealed that the hcp Co has a dominant role in the surface reaction of electrocatalytic oxygen evolution, whereas the fcc phase induces the built-in electric field at the interfaces with N-doped graphene to accelerate the H+ ion transport.  相似文献   
2.
通过TCH-600氧、氮、氢分析仪在唐钢的实际应用,重点介绍了助熔剂、坩埚、样品熔解及空白和校正过程中应注意的问题,钢铁样品分析条件的选择.  相似文献   
3.
Eldad Herceg 《Surface science》2006,600(19):4563-4571
The formation of a well-ordered p(2 × 2) overlayer of atomic nitrogen on the Pt(1 1 1) surface and its reaction with hydrogen were characterized with reflection absorption infrared spectroscopy (RAIRS), temperature programmed desorption (TPD), low energy electron diffraction (LEED), Auger electron spectroscopy (AES), and X-ray photoelectron spectroscopy (XPS). The p(2 × 2)-N overlayer is formed by exposure of ammonia to a surface at 85 K that is covered with 0.44 monolayer (ML) of molecular oxygen and then heating to 400 K. The reaction between ammonia and oxygen produces water, which desorbs below 400 K. The only desorption product observed above 400 K is molecular nitrogen, which has a peak desorption temperature of 453 K. The absence of oxygen after the 400 K anneal is confirmed with AES. Although atomic nitrogen can also be produced on the surface through the reaction of ammonia with an atomic, rather than molecular, oxygen overlayer at a saturation coverage of 0.25 ML, the yield of surface nitrogen is significantly less, as indicated by the N2 TPD peak area. Atomic nitrogen readily reacts with hydrogen to produce the NH species, which is characterized with RAIRS by an intense and narrow (FWHM ∼ 4 cm−1) peak at 3322 cm−1. The areas of the H2 TPD peak associated with NH dissociation and the XPS N 1s peak associated with the NH species indicate that not all of the surface N atoms can be converted to NH by the methods used here.  相似文献   
4.
研究了混合稀土储氢合金中氧和氮的测定方法。针对稀土金属高温易挥发、分解的特点,选择适宜的加热温度,使用镍浴,选择高温座坩埚进行试验:选择出了合适的助熔剂的预处理方法。方法已用于实际样品。对含氧0.43%、含氮0.018%的试样,分析精密度为氧4.3%,氮5.9%,加标回收率氧为93%~104%,氮为92%~110%。  相似文献   
5.
Nanotube aggregates with high porosity were prepared from hydrothermal treatment of TiO2 particles in NaOH at 130 °C, followed by HCl rinsing to different pH values. Pore structure of the aggregates, which were mainly mesoporous, was characterized by analyzing the N2 sorption isotherm with different methods including the t-plot and density function theory. The surface area, pore volume and mean pore size of the aggregates increased with the rinsing acidity to reach a maximum (e.g. 400 m2/g in surface area) at pH 1.6 and then decreased with further increase of the acidity. The crystalline phase and composition of the aggregates were, as well, significantly affected by the acidity of the post-treatment rinsing. Large-surface area aggregates were of loosely-attached nanotubes, composed of both anatase TiO2 and H2Ti2O5·H2O, obtained under a mildly acidic rinsing condition, while basic or highly acidic conditions resulted in the formation of closely coagulated dense structures consisting of different crystalline phases.  相似文献   
6.
Nitrogen-doped TiO2 powders were successfully prepared by a wet method, i.e., a micro-emulsion-hydrothermal method, in different acid environments. Several characterization techniques, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS) and UV-visible diffuse reflectance spectra, were combined to determine the crystal phase, concentration and chemical states of the nitrogen doped in TiO2. The high photocatalytic activity of the nitrogen-doped TiO2 was evaluated through the decomposition of rhodanmine B under visible light irradiation. It was suggested that the doped nitrogen formed oxynitride (NO) and produced impurity states at higher above the valence band of TiO2. Therefore, the nitrogen doping could enhance the response of photocatalyst to the visible light and improve the photocatalytic activity because of the narrowing of band gap of TiO2.  相似文献   
7.
Measurements of nitrogen atom density, by means of NO chemical titration, along with an evaluation of the densities of some excited species N 2 (B, v=11), N 2 (B, v=2), N 2 (C, v=0), and N 2 + (B,v=0), by means of a spectroscopic study of some bands of dinitrogen, are achieved along the flowing afterglow of a dinitrogen microwave plasma (2450 MHz) for several pressures. The concentrations obtained are in the following range: [N]10 +15 , [N 2 (B, 2)]10 +9 –10 +10 , [N 2 (B, 11)]10 +8 –10 +9 , [N 2 (C, 0)]10 +6 –10 +7 , [N 2 + (B,0)]10 +6 -10 +8 (cm-3). From a kinetic study of the formation and decay of excited and charged species, an estimation of N 2 (A, v), N 2 (X, v, and N 2 + (X) densities can be derived: [N 2 (A, v)]10 +12 , [N 2 (X, v6)]10 +15 –10 +16 , [N 2 (X, v12)]10 +14 –10 +15 , [N 2 + (X)]10 +10 (cm -3 ).  相似文献   
8.
三效催化剂作用下的NO+CO催化反应机理   总被引:1,自引:0,他引:1  
NO与CO在Pt/Rh/Pd及载体组成的三效催化剂上的氧化还原应用是控制汽车尾气对空气污染的一个关键反应,这一反应随着近年来对环境保护的日益重视而成为国内外研究的热点,本文主要综述了NO及CO在Pt,Rh,Pd上的吸附及反应机理的实验及理论研究现状,总结得出:在三效催化剂对NO CO的催化反应中,Pt,Pd对CO的催化氧化起主要作用,而Rh对NO的解离有很好的活化作用。  相似文献   
9.
重油催化裂化汽油中含氮化合物的分析   总被引:6,自引:0,他引:6       下载免费PDF全文
利用酸萃取技术浓缩分离重油催化裂化(RFCC)汽油中的氮化物,比较了两种萃取剂和两种油剂比对分离效果的影响,结果发现选用10%(体积分数)HCl作萃取剂,油剂比为10:1(体积比)时,碱性氮化物的提取率较高;浓缩分离出的氮化物用色谱-质谱联用方法对其进行了检测,结果表明RFCC汽油中的氮化物主要是C0-C2苯胺及少量吡啶类、喹啉类碱性氮化物。  相似文献   
10.
以CeO2/Y分子筛和MFe2O4(M=Ni,Co,Zn)为载体,制备Au/CeO2/Y和Au-MFe2O4负载型金催化剂.用CH4做还原剂,考察了它们在有氧条件下催化还原NOχ的活性.结果表明:在Au-Y中引人助剂Ce,使得Au/CeO2/Y的催化活性高于Au/Y;Au-CoFe2O4的催化活性高于Au-Fe2O3,反应温度为300℃时,NOχ在Au-CoFe2O4上的转化率达到39.70%.  相似文献   
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