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1.
The "wired" bilirubin oxidase (BOD) bioelectrocatalyst is superior to pure platinum as an electrocatalyst of the four-electron electroreduction of O(2) to water. Not only is its overpotential for O(2) reduction lower, but unlike platinum, it is not affected by organic compounds like glucose. The "wired" BOD-coated carbon cathode operates for >1 week at 37 degrees C in a glucose-containing physiological buffer solution. One of its key applications would be in a glucose-O(2) biofuel cell, which would operate in living tissues. The cathode is, however, short-lived in serum, losing its electrocatalytic activity in a few hours. Here we show that the damaging serum component is a product of the reaction of urate and dissolved oxygen. Exclusion of urate, by application of Nafion film on the cathode, improves the stability in serum.  相似文献   

2.
Oxygen is electroreduced to water on a carbon cathode coated with wired bilirubin oxidase in a pH 7.4 0.15 M NaCl phosphate buffer solution at 37 °C at much lesser polarization than it is on a pure platinum cathode in 0.5 M H2SO4. While the wired bilirubin oxidase cathode operates for over a week in the aerated or oxygenated buffer solution, it is degraded rapidly when in serum. We reported earlier that in the presence of O2 an intermediate product of the electrooxidation of urate, which is a normal serum component, irreversibly damages the wired bilirubin oxidase and also reported that the electrocatalyst is irreversibly damaged, in the absence of urate, when it is brought, by disconnecting the electrode, to the O2/H2O half cell potential at pH 7.4. Here we report that a) dissolved bilirubin oxidase is irreversibly and rapidly damaged by urate in the presence of O2; and b) that the immobilized wired bilirubin oxidase electrocatalyst is not only irreversibly deactivated by urate in the presence of O2 in a few hours, but is initially reversibly deactivated, in 1 min or less, by the urate in the presence of O2.  相似文献   

3.
O2 was electroreduced to water, at a true-surface-area-based current density of 0.5 mA cm-2, at 37 degrees C and at pH 5 on a "wired" laccase bioelectrocatalyst-coated carbon fiber cathode. The polarization (potential vs the reversible potential of the O2 /H2O half-cell in the same electrolyte) of the cathode was only -0.07 V, approximately one-fifth of the -0.37 V polarization of a smooth platinum fiber cathode, operating in its optimal electrolyte, 0.5 M H2SO4. The bioelectrocatalyst was formed by "wiring" laccase to carbon through an electron conducting redox hydrogel, its redox functions tethered through long and flexible spacers to its cross-linked and hydrated polymer. Incorporation of the tethers increased the apparent electron diffusion coefficient 100-fold to (7.6 +/- 0.3) x 10-7 cm 2 s-1. A miniature single-compartment glucose-O2 biofuel cell made with the novel cathode operated optimally at 0.88 V, the highest operating voltage for a compartmentless miniature fuel cell.  相似文献   

4.
We have demonstrated that a simply prepared water-soluble polyoxometalate, Na12[WZnZn2(H2O)2(ZnW9O34)2], synthesized from readily available zinc and tungsten salts in the presence of nitric acid, is an effective catalyst for selective alcohol oxidation with hydrogen peroxide in biphasic (water-alcohol) reaction media. Experiments have shown that the "self-assembled" catalyst in its mother liquor was as active as the isolated catalyst. The aqueous catalyst solution is easily separated from the water-insoluble products and can be recycled without loss in activity or selectivity.  相似文献   

5.
The electrochemical properties of Se surface-modified Ru/C catalysts (RuSey/C with y = 0 to 1) and their O2 reduction characteristics were determined in model studies under well-defined mass transport conditions, combining quantitative differential electrochemical mass spectrometry and double-disk electrode thin-layer flow-cell measurements. Surface characterization of the catalysts including the quantitative evaluation of the active surface area was performed by electrochemical/mass spectrometric (combined H-upd adsorption, preadsorbed CO monolayer oxidation, Cu-upd adsorption/stripping, and RuOx formation) methods. The suitability of these methods for the determination of the active surface area in the high and low Se coverage regime are discussed, and COad stripping is found to be the most relevant method for the present catalysts. The kinetic parameters for the ORR (activity and selectivity) under quasi-steady-state conditions and their variation with Se modification were evaluated in potentiostatic flow-cell measurements. Modification of Ru/C catalyst by Se improves the O2 reduction activity and reduces the tendency for H2O2 formation in the technically relevant potential region of 0.6-0.8 VRHE, but even for the best catalyst compositions a significant ( approximately 0.2 VRHE) overpotential for O2 reduction on the RuSey/C catalysts remains compared to that for the Pt/C catalyst, and we find H2O2 yields of at least 1% at typical cathode operation potentials. Consequences of the relatively high H2O2 yields for membrane/electrode stability in practical applications are discussed.  相似文献   

6.
The first enzyme-based catalyst that is superior to platinum in the four-electron electroreduction of oxygen to water is reported. The smooth Pt cathode reached half and 90% of the mass transport-limited current density at respective overpotentials of -0.4 and -0.58 V in 0.5 M sulfuric acid, and only at even higher overpotentials in pH 7.2 phosphate buffer. In contrast, the smooth "wired" bilirubin oxidase cathode reached half and 90% of the mass transport-limited current density at respective overpotentials as low as -0.2 and -0.25 V. The mass transport-limited current density for the smooth "wired" enzyme cathode in PBS was twice that with smooth Pt in 0.5 M sulfuric acid. Under 1 atm O2 pressure, O2 was electroreduced to water on a polished carbon cathode, coated with the "wired" BOD film, in pH 7.2 saline buffer (PBS) at an overpotential of -0.31 V at a current density of 9.5 mA cm-2. At the same overpotential, the current density of the polished platinum cathode in 0.5 M H2SO4 was 16-fold lower, only 0.6 mA cm-2.  相似文献   

7.
以无模板生长法制备了泡沫镍载NiCo2O4纳米线正极材料, XRD和SEM表征结果表明, 所得材料为NiCo2O4纳米线, 以循环伏安法和计时电流法研究了泡沫镍载NiCo2O4纳米线对H2O2电还原的催化性能. 结果显示, 在0.4 mol/L H2O2 和 3.0 mol/L NaOH 溶液中, 当电压为-0.4 V(vs. Ag/AgCl)时, 循环伏安的电流密度达到125 mA/cm2; 当电压为-0.2, -0.3和 -0.4 V 时, 在30 min 的测试时间内, 计时电流密度几乎均为一常数, 表明以泡沫镍载NiCo2O4纳米线为催化剂电还原H2O2具有很高的活性和很好的稳定性.  相似文献   

8.
利用溶胶-凝胶法合成纳米NiCo2O4,并利用X射线衍射和透射电镜分析其结构和表面形貌. 结果表明NiCo2O4具有尖晶石结构, 平均粒径约为15 nm. 利用电势线性扫描和恒电势法测定了其对H2O2在碱性溶液中电化学还原反应的催化性能. 发现NiCo2O4对H2O2电化学还原具有高的催化活性和稳定性, 在H2O2浓度低于0.6 mol·L-1时, 其电化学还原反应主要通过直接还原途径进行. 以NiCo2O4为阴极催化剂的Al-H2O2半燃料电池在室温下的开路电压达1.6 V; 在1.0 mol·L-1 H2O2溶液中, 峰值功率密度达209 mW·cm-2, 此时电流密度为220 mA·cm-2.  相似文献   

9.
A selective and sensitive chemiluminometric flow sensor for the determination of L-glutamate in serum, based on immobilized oxidases such as glutamate oxidase (GOD), uricase (UC) and peroxidase (POD), is described herein. The principle for the selective chemiluminometric detection for L-glutamate is based on coupled reactions of four sequentially aligned immobilized oxidases, UC/POD/GOD/POD in a flow cell. The immobilized UC was employed to decompose urate, which is one of the major interfering components in serum for a luminol-H2O2 chemiluminescence reaction. The H2O2 produced from the UC reaction readily reacted with reducing components, such as ascorbate and glutathione, and then the excess H2O2 was decomposed by the immobilized POD. L-Glutamate in the sample plug was enzymatically converted to H2O2 with immobilized GOD. Subsequently, the peroxide reacts with luminol on the immobilized POD to produce chemiluminescence, proportional to glutamate concentration. The enzymes were immobilized on tresylated poly(vinyl alcohol beads). The immobilized enzymes were packed into TPFE tube (1.0 mm i.d. x 60 cm), in turn, and used as a flow cell. The sampling rate was 30 h-1. The calibration graph for L-glutamate is linear for 20 nM-5 microM; the detection limit (signal-to-noise = 3) is 10 nM.  相似文献   

10.
采用浸渍还原法制备了纳米Au/C, 并将其用作直接硼氢化钠-过氧化氢燃料电池阴极催化剂. 通过X-射线衍射(XRD)和透射电镜(TEM)对催化剂进行结构和形貌分析, 结果表明10~20 nm的纳米Au粒子均匀地分散在Vulcan XC-72R碳黑表面上. 循环伏安测试表明, 在0.5 mol•L-1 H2SO4和2 mol•L-1 H2O2混合溶液中, 纳米Au/C在0.85 V处表现较强的不可逆还原电流. 以纳米Au/C为阴极催化剂, AB5储氢合金为阳极催化剂制成直接硼氢化钠-过氧化氢燃料电池. 电池在30 ℃下的最大功率密度可达到78.6 mW•cm-2. 当电池工作温度升高至50 ℃时, 电池的最大功率密度超过120 mW•cm-2. 此外, 研究了阴极溶液中H2SO4和H2O2浓度对电池性能的影响. 当阴极溶液中H2SO4浓度小于0.5 mol•L-1时, 酸浓度对电池性能影响较大; H2O2浓度对电池性能影响较小. 确定了阴极溶液中H2SO4和H2O2的最佳浓度分别为0.5和2 mol•L-1.  相似文献   

11.
于秀娟  周定 《电化学》2000,6(2):233-237
本文研究了石墨、银、钛基RuO2 /TiO2 涂层材料等几种导电材料取代铂作为葡萄糖传感器阴极的可能性 .结果表明 ,钛基RuO2 /TiO2 涂层电极的化学性质稳定 ,对析氢反应有一定的催化作用 .由石墨_环氧胶粘剂混合物—钛基RuO2 /TiO2 组成的电化学体系可以在 0 .6~ 0 .8V电压范围内检测H2 O2 的稳态氧化电流 ;在 0 .7V电压下 ,以钛基RuO2 /TiO2 涂层材料作为阴极的葡萄糖传感器的性能与以铂片为阴极的传感器性能接近 ,钛基RuO2 /TiO2 涂层材料是取代铂的最佳阴极材料 .  相似文献   

12.
以活性炭、NiSO4.6H2O和FeCl3.6H2O为主要原料,在180oC水热反应10h制得了磁性纳米材料活性炭-铁酸镍(AC-NiFe2O4),采用X射线粉末衍射法、傅里叶变换红外光谱法、扫描电镜法、透射电镜法及振动样品磁强计对样品进行了表征.在可见光λ>400nm照射下,以AC-NiFe2O4为异相芬顿催化剂,在草酸存在下研究了亚甲蓝、罗丹明B和孔雀石绿光催化降解反应.结果表明,未掺杂AC的NiFe2O4在可见光辐射下基本不催化降解有机物;而掺杂活性炭后反应10h内20.0mg/L有机模拟污染物降解率达到90%以上.催化剂重复循环使用8次以上,其催化活性基本不变.可见AC-NiFe2O4有望用于光催化降解有机污染物中.  相似文献   

13.
以三氯化钌和氯铂酸为源物质,用溶胶凝胶法制备Ni/Ag2O/RuO2-Pt复合阴极,研究了不同涂覆液AgNO3浓度和热处理温度对该阴极析氢性能的影响.采用SEM-EDS、XRD和XPS观察阴极的表面形貌、表征其组分,结果表明,Ni/Ag2O/RuO2-Pt复合阴极表面致密,粗糙度大且裂纹少.电化学测量表明,在11 mol.L-1NaOH(90℃)溶液、0.3 A.cm-2电流密度下,Ni/Ag2O/RuO2-Pt复合阴极的析氢电位比纯Ni电极正移484 mV;交换电流密度是纯Ni电极的10倍.该阴极制备工艺简单,析氢活性高,有望降低氯碱工业的能耗.  相似文献   

14.
Butyl butyrate is a very important compound, which is transparent liquid and has the pear,apple flavor. Natural exist is in the fruit, such as apple, pear, banana, grape and strawberry, etc.Primarily used for to prepare the edible spice and is also widely used in industrial intermediate product, solvent and synthetic perfumery. Until now, there are many methods to synthesize it.Conventionally H2SO4 was reported, but it causes many problems, such as the erosion of equipment,easily causes the vice-reaction, difficulty for after-treatment, environment pollution etc. A new environmentally friendly catalyst, SO42-/TiO2-La2O3 was prepared. And catalytic activity of catalyst in esterification of n-butanoic acid and n-butyl alcohol with SO42-/TiO2-La2O3 as catalyst has been no report up to now. Therefore, studying on the synthetic catalyst has theoretical and practical significances. The catalytic activity of catalyst in esterification of n-butanoic acid and n-butyl alcohol was measured.In this paper, we fast reported the preparation of SO42-/riO2-La2O3 and discussed the factors influencing the synthesis catalyst. The catalyst rare earth solid superacid SO42-/TiO2-La2O3 was The precipitate was filtered and washed thoroughly with distilled water until chloride ions were free.furnace at 480 ℃ for 3 h, and finally stored in a desiccator until use.The factors influencing the synthesis were discussed and the best conditions were found out. The experiment indicated that this catalyst has the following advantage. The amount of catalyst was little and getting high yield, its product has a good quanlity and is favour of reducing erosion of equipment, avoiding environment pollution. The optimum conditions are: molar ratio of n-butanoic acid to n-butyl alcohol was 1:1.5, the quantity of catalyst was equal to 1.5% of feed stocks, the reaction temperature was 93-114 ℃, and the reaction time was 1.0 h. Rare earth solid superacid SO42-/TiO2-La2O3 is an excellent catalyst for synthetizing butyl butyrate and its yield can reach over 90.0%.A good catalyst should be able to be used repeatedly. The reusing of the catalyst was studied. We found that the catalytic activities of our catalyst are almost unchanged after it had been used five times. From the above results and discussion, we can see that the synthesis of n-butyl butyrate by SO42-/TiO2-La2O3 instead of H2SO4 has a great prospect of application. It has a good applied foreground.  相似文献   

15.
富氧条件下Cu/Al2O3催化剂上C3H6选择性还原NO的研究   总被引:9,自引:0,他引:9  
以Cu/Al2O3为催化剂,对富氧条件下C3H6为还原剂选择性催化还原NO反应进行了研究.活性评价结果表明,与高活性的Ag/Al2O3催化剂相比,Cu/Al2O3催化剂选择性还原NO的活性较低,NO的最高转化率仅为40%.在所考察的温度范围(473~723K)内,红外谱图中不存在有机含氮化合物(R—ONO和R—NO2)的特征振动吸收峰.作为反应中间体—NCO的前驱体,有机含氮化合物在Cu/Al2O3催化剂表面难以生成是造成催化剂选择性还原NO活性低的直接原因.在Cu/Al2O3催化剂上,NO2吸附能够优先发生,并以NO3-物种的形式覆盖在大部分催化剂表面.动态原位红外光谱实验发现,这种NO3-表面物种与C3H6的反应性较差,使生成有机含氮化合物的关键反应难以发生,但此时的催化剂表面有利于C3H6和O2的完全氧化反应,这是导致Cu/Al2O3催化剂选择性较低的根本原因.  相似文献   

16.
卤代苯与酚类化合物反应制取二芳基醚是现代有机合成中的一个重要反应.传统的二苯醚合成方法是铜催化卤代苯与酚类化合物的Ullmann型C-O偶联反应,但是这种方法需要苛刻的反应条件.后来,人们发现了Pd(0)和Cu(Ⅰ)基催化剂,但是前者成本较高,且需要使用昂贵的配体,因此其应用受到了限制,而铜作为一种成本较低的催化剂受到了越来越多的关注.铜催化剂可以分为均相和非均相两大类.均相铜催化剂使用的是铜盐,并且需要加入配体,成本较高,且不易分离和循环利用.非均相铜催化剂研究较多的是CuO,Cu2O及Cu纳米颗粒,其中Cu2O纳米颗粒催化剂对Ullmann型C-O偶联反应具有很高的催化活性,但是它在潮湿的空气中容易被氧化,因此需要寻找一种合适的载体防止Cu2O纳米颗粒被氧化.SiC具有优良的化学稳定性及导电导热性能,并且作为载体己经成功应用到很多热催化及光催化反应中.本文以高比表面积的SiC为载体,以二乙二醇作为溶剂和还原剂,采用传统的两步液相还原法制备了Cu2O/SiC催化剂,并通过X射线衍射、X射线光电子能谱、扫描电子显微镜(SEM)、透射电子显微镜(TEM)和H2程序升温还原等方法对Cu2O/SiC催化剂进行了表征.SEM和TEM结果表明,Cu2O纳米颗粒均匀分散在SiC表面,同时上述表征结果都表明Cu在SiC上主要以Cu2O的形式存在.将制备的Cu2O/SiC催化剂用于催化卤代芳烃与酚类的Ullmann C-O偶联反应中.以碘苯和苯酚的Ullmann C-O偶联反应为模型实验,考察了反应温度、反应时间、溶剂、碱的种类及用量和催化剂用量等条件的影响,得到了碘苯与苯酚UllmannC-O偶联反应的最优反应条件为:卤代芳烃14 mmol,酚类14 mmol,1.0当量的Cs2CO3,Cu2O/SiC(5 wt%) 10 mg,四氢呋喃10mL,在Ar气氛下150℃反应3h.在该条件下,二苯醚收率达到97%,转化频率(TOF)高达1136 h-1.Cu2O/SiC催化剂对Ullmann C-O偶联反应具有很好的普适性,并且对Ullmann C-S偶联反应也表现出很高的活性,TOF高达1186h-1.以碘苯和苯酚的Ullmann C-O偶联反应为基准实验,对催化剂的循环稳定性进行了考察.Cu2O/SiC催化剂五次循环后二苯醚的收率从97%降低至64%,这主要是由于活性组分Cu2O的流失所致.  相似文献   

17.
采用共沉淀法制备了低温水煤气变换Au/α-Fe2O3催化剂。通过正交实验优化催化剂的还原活化条件,考察了金负载量对催化剂性能的影响。采用BET、XRD、UV-VIS、XRF、H2-TPR和O2-TPO等表征手段对催化剂的结构进行分析,并与其催化性能进行关联。结果表明,(1)采用10%-H2/N2还原气将催化剂在150 ℃原位还原9 h,其催化活性最高;(2)金的最佳负载量为8.00%,此时在催化剂制备过程中金的流失量较少,金粒子较小,也有利于抑制催化剂在反应过程中烧结;(3)TPR-TPO结果表明,金的负载量为8.00%时,Au/α-Fe2O3催化剂具有较易被还原、不易被氧化的性质,从而显示出最高催化活性。(4)Au/α-Fe2O3催化剂中的金以单质金(Au0)形式存在;其高活性与Au0-Fe3O4间的协同作用有关。  相似文献   

18.
Understanding the hydrogen peroxide electrochemistry on platinum can provide information about the oxygen reduction reaction mechanism, whether H(2)O(2) participates as an intermediate or not. The H(2)O(2) oxidation and reduction reaction on polycrystalline platinum is a diffusion-limited reaction in 0.1 M HClO(4). The applied potential determines the Pt surface state, which is then decisive for the direction of the reaction: when H(2)O(2) interacts with reduced surface sites it decomposes producing adsorbed OH species; when it interacts with oxidized Pt sites then H(2)O(2) is oxidized to O(2) by reducing the surface. Electronic structure calculations indicate that the activation energies of both processes are low at room temperature. The H(2)O(2) reduction and oxidation reactions can therefore be utilized for monitoring the potential-dependent oxidation of the platinum surface. In particular, the potential at which the hydrogen peroxide reduction and oxidation reactions are equally likely to occur reflects the intrinsic affinity of the platinum surface for oxygenated species. This potential can be experimentally determined as the crossing-point of linear potential sweeps in the positive direction for different rotation rates, hereby defined as the "ORR-corrected mixed potential" (c-MP).  相似文献   

19.
Cobalt oxide catalysts supported on mesoporous silica (Co3O4/MPS) were prepared, characterized and applied for catalytic oxidation of NO. Effects of catalyst supports, calcination temperatures, H2O and SO2 on NO conversion were investigated. The samples were also characterized by BET, XRD, FTIR and TG/DTG. The results suggested that Co3O4/MPS catalyst calcined at 573 K had the smallest crystal particles and the best surface dispersion. This catalyst had the highest activity and yielded 82% NO conversion at 573 K, at a space velocity of 12000 h−1. Although the conversion of NO decreased with the introduction of H2O, it could be restored completely after removing residual H2O from Co3O4/MPS catalyst by heating at 573 K. In the presence of SO2, the oxidation activity decreased and CoSO4 was detected on the catalyst. The NO conversion decreased to 30.2% in the presence of SO2 and H2O. It could not be restored completely after cutting off H2O and SO2. The deactivation of the catalyst in the presence of SO2 and H2O was attributed to the formation of cobalt sulfate species.  相似文献   

20.
用直接法合成了配合物Cu(ntp)2(H2O)4,并测定了其晶体结构。分子式为C16H16CuN2O16。晶体属单斜晶系,C2/c空间群,晶胞参数为a=2.266 5(7) nm, b=0.706 8(2) nm, c=1.575 5(4) nm, β=126.42(1)°。对晶体进行了DSC和TG-DTG热分析,根据结果提出了可能的热分解过程。  相似文献   

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