137 resultados para PROTON EXHANGE MEMBRANE FUEL CELLS


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开展了不同重力情况下燃料电池性能的实验研究.利用微重力落塔,对常重力和微重力条件下燃料电池发电时其内部的两相流动开展了可视化现场观测.对重力因素对燃料电池内部传质过程的影响进行了分析和讨论.实验结果表明:当电流密度较大时,在微重力环境中燃料电池性能较常重力环境中的有较明显下降.由于微重力条件下浮升力的消失导致气体不能及时从流道中排出,进而对直接甲醇燃料电池内的传质过程产生负面影响.

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燃料电池以其高效、环境友好的发电方式,被誉为21世纪的能源技术。其中,直接甲醇燃料电池(DMFC)更以燃料甲醇来源丰富,价格低廉,储存、携带方便而成为近年的研究热点。目前DNDFC存在的一个主要问题是"甲醇透过",即甲醇从阳极穿过固体电解质膜进入到阴极,而阴极催化剂一般是Pt/C,因此在阴极会同时发生甲醇氧化和氧还原,严重降低了电池的库仑效率和电压效率。此夕卜甲醇及其氧化中间产物还会使P口C中毒。虽然试验了一些低甲醇透过率的电解质膜,但仍无法完全消除甲醇透过。因此研制对氧还原催化活性高而对甲醇氧化没有活性,即耐甲醇的氧还原电催化剂是一个十分重要的课题。本论文主要从催化剂的组成、热处理、制备方法和载体等方面进行了相关研究,此外,还开展了生物燃料电池阴极电催化剂的研究。具体结果如下:1.热处理对电催化剂性能的影响(1)首次研究了炭载铂(Pt/C)对氧还原和甲醇氧化的催化活性与热处理温度的关系。发现P"C的催化活性随热处理温度的升高而降低,其原因是热处理使R/C中Pt的结晶度提高、粒径变大、表面浓度降低。但是,热处理使PUC催化甲醇氧化活性的降低程度远大于催化氧还原活性的降低程度。该研究提供了一种有效改善P口C催化剂耐甲醇性能的简便方法。(2)研究了炭载四狡基酞著钻(CoPcTc/C)和炭载四苯基铁叶琳(FeTPP/C)对氧还原和甲醇氧化的催化活性与热处理温度的关系。发现800℃热处理的CoPcTc/C对氧还原的催化活性最高;XPS和XRD分析表明,其活性位主要为含CoN4结构的物质。FeTPP/C催化剂与CoPcTc/C类似,700℃热处理的对氧还原催化活性最高。二者对甲醇氧化都没有活性。(3)首次研究了炭载四苯基铁叶琳一铂(FeTPP-Pt/C)复合催化剂对氧还原和甲醇氧化的催化活性与热处理温度的关系。发现热处理使FeTPP-Pt/C对氧还原的催化活性提高,并且优于相应P灯C,这是因为复合催化剂对氧还原的催化活性来源于FeTPP和Pt两部分。另外,FeTPP-Pt/C对甲醇氧化的催化活性随热处理温度的升高而降低,降低幅度大于相应Pt/C,这是因为在复合催化剂中,FeTPP在Pt/C表面的分散会降低甲醇与R的接触。700℃热处理的FeTPP-Pt/C对氧还原的催化活性最高,并且耐甲醇能力很强,非常适合作为DMFC阴极电催化剂。(4)首次研究了FeTPP-TiO2/C复合催化剂对氧还原的催化活性与热处理温度的关系。发现70。℃热处理的FeTPP-TiO2/C对氧还原的催化活性最高,并且稳定性好;复合催化剂提高了氧还原的电子转移数。这是因为TIOZ能够将FeTPP催化氧还原过程中产生的H2O2及时分解为O2和H2O,再重新被FeTPP还原。TIOZ的加入有望改善过渡金属大环化合物催化剂的长程稳定性。此夕卜该复合催化剂对甲醇氧化没有活性。2.制备方法对电催化剂性能的影响(1)首次同时研究了Pt/C对氧还原和甲醇氧化的催化性能,讨论了影响Pt/C催化活性的主要因素。XRD、XPS和TEM分析表明,无定型Pt含量高的Pt/C对氧还原的催化活性较高,表面氧化物含量高的Pt/C对甲醇氧化的催化活性较高。为制备耐甲醇能力强、催化氧还原活性高的Pt/C催化剂提供了理论参考。(2)比较了平衡吸附法和强制沉积法制备的FeTPP-Pt/C催化剂的性能,发现前者对氧还原和甲醇氧化的催化活性都高于后者,这是因为由强制吸附法制备的复合催化剂,FeTPP将一部分Pt覆盖,使其无法发挥活性。3.活性炭载体对Pt/C电催化剂性能的影响利用多种分析手段,系统比较了VulcanXC-72炭和上海松木炭的物理、化学性质对Pt/C电催化剂性能的影响。发现孔径适当、电导率高、灰分和表面含氧基团较少的活性炭作载体时,制得的P口C催化剂的性能较好。为PEMFC中电催化剂载体的选择提供了一些理论依据。4.生物燃料电池阴极电催化剂的研究首次制备了炭载微过氧化物酶-11(MP-11/C)电催化剂,通过循环伏安法、线性扫描法和旋转圆盘电极技术研究发现,MP-11/C对O2还原具有较高的催化活性,并且稳定性好,为生物燃料电池的研制提供了一种较好的酶固定方法。

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A novel carbon-supported palladium-rich Pd3Pt1/C catalyst prepared by a modified polyol process showed a better cell performance than Pt/C in direct methanol fuel cells, which may be attributed to palladium's inactivity to methanol electro-oxidation while exhibiting good performance to oxygen reduction reaction.

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An improved aqueous impregnation method was used to prepare 40 wt% Pt/C electrocatalysts. TEM analysis of the samples showed that the Pt particles impregnated for a short time have a very narrow size distribution in the range of 1-4 nm with an average size of 2.6 nm. UV-vis spectroscopy measurements verified that the redox reaction between PtCl62- and formaldehyde took place with a slow rate at ambient temperature via a two-step reaction path, where PtCl42- serves as an intermediate. The use of the short-time-impregnated 40 wt% Pt/C as cathode electrocatalysts in direct methanol fuel cells yields better performance than that of commercial 40 wt% Pt/C electrocatalyst. Experimental evidence provides clues for the fundamental understanding of elementary steps of the redox reactions, which helps in guiding the design and preparation of highly dispersed Pt catalyst for fuel cells.

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In this work, rapid and controllable confinement of one-dimensional (1D) hollow PtCo nanomaterials on an indium tin oxide (ITO) electrode surface was simply realized via magnetic attraction. The successful assembly was verified by scanning electron microscopy (SEM) and cyclic voltammetry, which showed that a longer exposure time of the electrode to the suspension of these 1D hollow nanomaterials (magnetic suspension) led to a larger amount of attached 1D hollow PtCo nanomaterials.

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This report describes the preparation of Pt-nanoparticle-coated gold-nanoporous film (PGNF) on a gold substrate via a simple "green" approach. The gold electrode that has been anodized under a high potential of 5 V is reduced by freshly prepared ascorbic acid (AA) solution to obtain gold nanoporous film electrode. Then the Pt nanoparticle is grown on the electrode by cyclic voltammetry (CV).

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Palladium nanoparticle-loaded carbon nanofibers (Pd/CNFs) were synthesized by the combination of electrospinning and thermal treatment processes. Scanning electron microscopy (SEM) and transmission electron microscopy (TEM) images show that spherical Pd nanoparticles (NPs) are well-dispersed on the surfaces of CNFs or embedded in CNFs. X-ray diffraction (XRD) pattern indicates that cubic phase of Pd was formed during the reduction and carbonization processes, and the presence of Pd NPs promoted the graphitization of CNFs. This nanocomposite material exhibited high electric conductivity and accelerated the electron transfer, as verified by electrochemical impedance spectroscopy (EIS) and cyclic voltammetry (CV).

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In this paper, it was found that the electrocatalytic activity of a Pt electrode for the electro-oxidation of formic acid could be dramatically enhanced with the modification of macrocycle compounds, such as iron-tetrasulfophthalocyanine (FeTSPc). The electro-oxidation of formic acid on a modified Pt electrode with FeTSPc occurs mainly through a direct pathway. A series of macrocycle compounds were also investigated as modifiers and exhibited a promotion effect similar to the Pt electrode.

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The mechanism of formic acid electrooxidation on iron tetrasulfophthalocyanine (FeTSPc) modified Pt electrode was investigated with electrochemical methods. It was found that a "third-body" effect of FeTSPc on Pt electrode predominates during the electrooxidation process based on unusual electrochemical results. The modification leads formic acid electrooxidation to take place through a desired direct pathway, in which the mechanism is proposed to be the gradual dehydrogenation of formic acid and the reaction of formate with hydroxyl species.

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The hybrid material based on WO3 and Vulcan XC-72R carbon has been used as the support of Pd nano-catalysts. The resultant Pd-WO3/C catalysts in a large range of WO3 content exhibit excellent catalytic activity and stability for formic acid electrooxidation. The great improvement in the catalytic performance is attributed to the uniform dispersion of Pd with less particle sizes on the WO3/C support and the hydrogen spillover effect which greatly accelerates the dehydrogenation of HCOOH on Pd.

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Pd nanoparticles supported on WO3/C hybrid material have been developed as the catalyst for the oxygen reduction reaction (ORR) in direct methanol fuel cells. The resultant Pd-WO3/C catalyst has an ORR activity comparable to the commercial Pt/C catalyst and a higher activity than the Pd/C catalyst prepared with the same method. Based on the physical and electrochemical characterizations, the improvement in the catalytic performance may be attributed to the small particle sizes and uniform dispersion of Pd on the WO3/C, the strong interaction between Pd and WO3 and the formation of hydrogen tungsten bronze which effectively promote the direct 4-electron pathway of the ORR at Pd.

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Pd/C catalysts with designed lattice constants were synthesized for the electro-oxidation of formic acid. By changing the solvents in the preparation procedure, it was demonstrated that the different lattice constants of Pd crystallites could be controlled as desired. The varied lattice constants may be attributed to the difference in the interactions between solvents and PdCl2. it was found that the lattice constant had an obvious effect on the electro-catalytic performance of Pd.

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Pd-Au/C and Pd-Ag/C were found to have a unique characteristic of evolving high-quality hydrogen dramatically and steadily from the catalyzed decomposition of liquid formic acid at convenient temperature, and further this was improved by the addition of CeO2(H2O)(x).

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A hybrid material based on Pt nanoparticles (Pt NPs) and multi-walled carbon nanotubes (MWNTs) was fabricated with the assistance of PEI and formic acid. The cationic polyelectrolyte PEI not only favored the homogenous dispersion of carbon nanotubes (CNTs) in water, but also provided sites for the adsorption of anionic ions PtCl42- on the MWNTs' sidewalls. Deposition of Pt NPs on the MWNTs' sidewalls was realized by in situ chemical reduction of anionic ions PtCl42- with formic acid. The hybrid material was characterized with TEM, XRD and XPS. Its excellent electrocatalytic activity towards both oxygen reduction in acid media and dopamine redox was also discussed.

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We firstly reported a novel polymer matrix fabricated by type I collagen and polymers, and this matrix can be used as nanoreactors for electrodepositing platinum nanoclusters (PNCs). The type I collagen film has a significant effect on the growth of PNCs. The size of the platinum nanoparticles could be readily tuned by adjusting deposition time, potential and the concentration of electrolyte, which have been verified by field-emitted scanning electron microscopy (FE-SEM). Furthermore, cyclic voltammetry (CV) has demonstrated that the as-prepared PNCs can catalyze methanol directly with higher activity than that prepared on PSS/PDDA film, and with better tolerance to poisoning than the commercial E-TEK catalyst. The collagen-polymer matrix can be used as a general reactor to electrodeposit other metal nanostructures.