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首页> 外文期刊>RSC Advances >Inserting AgCl@rGO into graphene hydrogel 3D structure: synergy of adsorption and photocatalysis for efficient removal of bisphenol A
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Inserting AgCl@rGO into graphene hydrogel 3D structure: synergy of adsorption and photocatalysis for efficient removal of bisphenol A

机译:将AgCl @ rGO插入石墨烯水凝胶3D结构中:吸附和光催化的协同作用,可有效去除双酚A

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An AgCl@graphene (rGO) core–shell structure was fabricated and then loaded into reduced graphene oxide hydrogel (rGH) to form AgCl@rGO-rGH by the chemical reduction method. The AgCl@rGO core–shell structure inhibited the aggregation of the AgCl particles and promoted the rapid transfer and separation of photogenerated electron–hole pairs. Moreover, the AgCl@rGO-rGH composite exhibited a high adsorption and photocatalytic degradation capacity for bisphenol A (BPA). Specifically, the degradation efficiency of BPA on AgCl@rGO-rGH-2 reached 93.7% under the synergy of adsorption and photocatalytic degradation, and the degradation efficiency of BPA reached 87.0% after five cycles of degradation, which demonstrated the great synergistic effect between graphene and AgCl. The degradation capabilities of AgCl@rGO-rGH were 6.4 and 2.8 times of pure AgCl and rGH on the synergistic degradation of BPA. In the continuous flow system, the degradation ratio of AgCl@rGO-rGH-2 remained 100% within the first 4 h under the synergy conditions. When the reaction time reached 9 h, the synergistic degradation ratio of BPA remained about 75.2%. It showed that AgCl@rGO-rGH-2 still has good degradation activity and long life in the mobile phase system.
机译:制备了AgCl @石墨烯(rGO)核壳结构,然后通过化学还原法将其加载到还原的氧化石墨烯水凝胶(rGH)中以形成AgCl @ rGO-rGH。 AgCl @ rGO核-壳结构抑制了AgCl颗粒的聚集,并促进了光生电子-空穴对的快速转移和分离。此外,AgCl @ rGO-rGH复合材料对双酚A(BPA)表现出高吸附和光催化降解能力。具体而言,在吸附和光催化降解的协同作用下,BPA在AgCl @ rGO-rGH-2上的降解效率达到93.7%,经过5个降解循环后,BPA的降解效率达到87.0%,表明石墨烯之间具有很好的协同作用。和AgCl。 AgCl @ rGO-rGH对BPA协同降解的降解能力分别是纯AgCl和rGH的6.4和2.8倍。在连续流系统中,在协同作用下,最初的4小时内,AgCl @ rGO-rGH-2的降解率保持100%。当反应时间达到9h时,BPA的协同降解率保持在75.2%左右。结果表明,AgCl @ rGO-rGH-2在流动相体系中仍具有良好的降解活性和长寿命。

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