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Unique Ability of BiOBr To Decarboxylate d-GIu and D-MeAsp in the Photocatalytic Degradation of Microcystin-LR in Water

机译:BiOBr在水中微囊藻毒素-LR的光催化降解中使d-GIu和D-MeAsp脱羧的独特能力。

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摘要

Bismuth oxide bromide, BiOBr, was used to catalyze the degradation of microcystin-LR (MC-LR) in water at neutral pH under visible light. During the investigation, twelve intermediates from MC-LR decomposition were identified by LC-MS. In addition to attacking MC-LR at the typically susceptible sites (i.e., the conjugated double bond of the Adda chain and terminal unsaturated bond of the Mdha chain), the BiOBr photocatalyst has the remarkable ability to decarboxylate the free acid groups on D-glutamic acid (Glu) and methyl-D-aspartic acid (MeAsp). This reactivity has not been previously observed with TiO_2 photocatalysis or with other MC-LR treatments in which decarboxylation does not occur until the MC-LR ring has been cleaved or mineralized to CO_2. Some expected intermediate products were detected with oxygen-18 labeling by using H_2 ~(18)O as the solvent to confirm that the decarboxylation process is mediated by BiOBr. Results from characterizing the intermediates as well as oxygen-18 labeling studies indicates that oxidative decarboxylation of MC-LR by BiOBr photocatalysis is not always initiated by hydroxyl radical attack (and/or interaction with a hole followed by hydrolysis) proposed mechanism in TiO_2 photocatalysis, whereas likely caused by a direct interaction between photoinduced hole of BiOBr and free carboxyl groups of MC-LR. This unusual decarboxylation behavior seems to be associated with the particular valence band and conduction band state of BiOBr photocatalyst. Also under BiOBr catalysis, a very stable guanidine group of L-arginine (L-Arg) that is nonreactive with TiO_2 photocatalysis is converted to an amino group and subsequently oxidized to a nitro group during the decomposition of MC-LR. This reaction sequence is also related to decarboxylation because the guanidine conversion requires a completely or partially decarboxylated precursor. Our results indicate that BiOBr, a photocatalyst that selectively destroys sites crucial to MC-LR toxicity, shows great promise as a means of effectively treating drinking water.
机译:溴化铋BiOBr用于在可见光下中性pH值下催化水中微囊藻毒素LR(MC-LR)的降解。在研究过程中,通过LC-MS鉴定了来自MC-LR分解的12种中间体。除了在典型的易感位点(即Adda链的共轭双键和Mdha链的末端不饱和键)进攻MC-LR之外,BiOBr光催化剂还具有使D-谷氨酸上的游离酸基脱羧的显着能力。酸(Glu)和甲基D-天冬氨酸(MeAsp)。以前在TiO_2光催化或其他MC-LR处理中未观察到这种反应性,在这些反应中,直到MC-LR环断裂或矿化成CO_2才发生脱羧。以H_2〜(18)O为溶剂,用氧18标记检测到一些预期的中间产物,以确认脱羧过程是由BiOBr介导的。表征中间体的结果以及氧18标记研究表明,BiOBr光催化作用使MC-LR的氧化脱羧作用并不总是由TiO_2光催化作用中提出的羟基自由基攻击(和/或与空穴相互作用然后水解)引发的,而可能是由BiOBr的光诱导空穴与MC-LR的游离羧基之间的直接相互作用引起的。这种异常的脱羧行为似乎与BiOBr光催化剂的特定价带和导带状态有关。同样在BiOBr催化下,与TiO_2光催化不反应的非常稳定的L-精氨酸的胍基(L-Arg)被转化为氨基,随后在MC-LR的分解过程中被氧化为硝基。该反应序列也与脱羧有关,因为胍转化需要完全或部分脱羧的前体。我们的结果表明,BiOBr是一种选择性破坏对MC-LR毒性至关重要的位点的光催化剂,具有作为有效处理饮用水的手段的广阔前景。

著录项

  • 来源
    《Environmental Science & Technology》 |2011年第4期|p.1593-1600|共8页
  • 作者单位

    Engineering Research Center of Eco-environment in Three Gorges Reservoir Region, Ministry of Education, China Three Gorges University, Hubei Yichang 443002, China;

    Engineering Research Center of Eco-environment in Three Gorges Reservoir Region, Ministry of Education, China Three Gorges University, Hubei Yichang 443002, China;

    Engineering Research Center of Eco-environment in Three Gorges Reservoir Region, Ministry of Education, China Three Gorges University, Hubei Yichang 443002, China;

    Engineering Research Center of Eco-environment in Three Gorges Reservoir Region, Ministry of Education, China Three Gorges University, Hubei Yichang 443002, China;

    Institute of Mountain Hazards and Environment, Chinese Academy of Sciences, Chengdu 610041, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:03:35

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