Photocatalytic Hydrogen Production from Aqueous Solution of Various Oxidizing Sacrifice Agents

被引:12
作者
Deguchi, Seiichi [1 ]
Shibata, Naoki [1 ]
Takeichi, Toshinori [1 ]
Furukawa, Yufu [1 ]
Isu, Norifumi [2 ]
机构
[1] Nagoya Univ, Fac Engn, Dept Energy Engn & Sci, Chikusa Ku, Nagoya, Aichi 4648603, Japan
[2] INAX Corp, Gen Res Inst Technol, Aichi 4798588, Japan
关键词
Titania photocatalyst; Water splitting; Hydrogen production; Oxidizing sacrifice agent; Saccharide aqueous solution; Carbon neutral; PARTIAL OXIDATION; VISIBLE-LIGHT; WE-NET; WATER; METHANE; CATALYST; TITANIA; SYSTEMS; FUEL; GAS;
D O I
10.1627/jpi.53.95
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
For photocatalytic water splitting rate enhancement, it is said efficient to add oxidizing sacrifice agents to water, which can consume produced O-2, in order to repress the reverse reaction, i.e. re-coupling of produced H-2 and From the viewpoint of carbon-neutral taking photosynthesis in nature into account, saccharides of foodstuffs are selected as experiementing oxidizing sacrifice agents. Additionally, a pyroligneous acid is also adopted as one of candidates of nonfood oxidizing sacrifice agents together with an acetic acid of its main component as a reference chemical. Since the most promising photocatalyst for water splitting is TiO2, that is clear from its electronic band structure, three commercial TiO2 are utilized after loading Pt. A simple batch vessel is employed as an apparatus since the purposes of this study are to clarify the fundamental characteristics of photocatalytic H-2 production and to optimize the operating conditions. As the results, 0.10 wt%-Pt loaded P25 is realized to provide the highest H-2 producing rate of 2.60 l/(m(2).h) from 50 g/l glucose aqueous solution. Though slightly higher efficiency call be obtained by regulating pH value, above-mentioned operating conditions with free pH are concluded superior from the viewpoint of consuming chemical for intending pH to efficiency increment. On the contrary to similar high photocatalytic H-2 producing rates from solutions of monosaccharide (glucose and fructose) and disaccharide (sucrose), solution of polysaccharide (starch) shows remarkably slow H-2 producing rate down to one-eighth of prescribed ones from monosaccharide and disaccharide, resulting in necessity of pretreating such macromolecules to unimolecules and/or micromolecules, controlling their adsorption to photocatalyst in order to adopt them as oxidizing sacrifice agents. A remarkably low H-2 producing rate is recognized from a solution of nonfood pyroligneous acid. Therefore, searches for other natural oxidizing sacrifice agents remain as an indispensable future task.
引用
收藏
页码:95 / 100
页数:6
相关论文
共 25 条
[11]   Photocatalysis for new energy production - Recent advances in photocatalytic water splitting reactions for hydrogen production [J].
Matsuoka, Masaya ;
Kitano, Masaaki ;
Takeuchi, Masato ;
Tsujimaru, Koichiro ;
Anpo, Masakazu ;
Thomas, John M. .
CATALYSIS TODAY, 2007, 122 (1-2) :51-61
[12]   WE-NET: Japanese hydrogen program [J].
Mitsugi, C ;
Harumi, A ;
Kenzo, F .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 1998, 23 (03) :159-165
[13]   Enhancement of photocatalytic hydrogen production rate using photosensitized Tio2/RuO2-MV2+ [J].
Nada, A. A. ;
Hamed, H. A. ;
Barakat, M. H. ;
Mohamed, N. R. ;
Veziroglu, T. N. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2008, 33 (13) :3264-3269
[14]   Effects of thermal treatments on the recovery of adsorbed water and photocatalytic activities of TiO2 photocatalytic systems [J].
Nosaka, AY ;
Nishino, J ;
Fujiwara, T ;
Ikegami, T ;
Yagi, H ;
Akutsu, H ;
Nosaka, Y .
JOURNAL OF PHYSICAL CHEMISTRY B, 2006, 110 (16) :8380-8385
[15]   Photocatalytic activity of a TiO2 photocatalyst doped with C4+ and S4+ ions having a rutile phase under visible light [J].
Ohno, T ;
Tsubota, T ;
Toyofuku, M ;
Inaba, R .
CATALYSIS LETTERS, 2004, 98 (04) :255-258
[16]  
PEDRERO CM, 2006, CATAL TODAY, V117, P362
[17]   Sonochemically prepared high dispersed Ru/TiO2 mesoporous catalyst for partial oxidation of methane to syngas [J].
Perkas, N ;
Zhong, ZY ;
Chen, LW ;
Besson, M ;
Gedanken, A .
CATALYSIS LETTERS, 2005, 103 (1-2) :9-14
[18]  
SATO S, 1981, J PHYS CHEM-US, V85, P592, DOI 10.1021/j150605a027
[19]   PHOTO-KOLBE REACTION AT GAS SOLID INTERFACES [J].
SATO, S .
JOURNAL OF PHYSICAL CHEMISTRY, 1983, 87 (18) :3531-3537
[20]   Recent advances in catalysis for hydrogen production and fuel processing for fuel cells [J].
Song, Chunshan .
TOPICS IN CATALYSIS, 2008, 49 (1-2) :1-3