光催化
材料科学
还原(数学)
氧气
吸附
氧还原
催化作用
无机化学
辐照
激进的
氧化还原
过氯酸盐
光化学
高氯酸盐
化学工程
反应机理
空位缺陷
降级(电信)
表征(材料科学)
能量转换效率
反应中间体
还原剂
氧还原反应
作者
Weixue Wang,Xin Cao,Zikai Feng,Jianfei Cao,Mei Liu,Bolin Wang,Haifeng Zhang,Chenshuai Yan
标识
DOI:10.1021/acsami.5c24401
摘要
Technetium-99 ( 99 Tc) predominately exists in the form of oxygenated anions ( 99 TcO 4 – ) under oxic conditions, which are highly soluble and non/weakly complexing; converting it to a sparingly soluble 99 TcO 2 · n H 2 O precipitate for further disposal is a well-established tactic. Oxygen vacancy (OV) engineering paves a shortcut for modulating the kinetics, energetics, and mechanisms of photocatalytic reduction synergistically. However, the mechanism that OVs contribute to the photocatalytic reduction of 99 TcO 4 – remains unclear. Herein, OV-enriched ultrathin two-dimensional TiO 2 is fabricated via the solvent-free confined synthesis strategy. Based on the characterization analysis with experiments and density functional theory, it is demonstrated that the apparent elevated ReO 4 – (a nonradioactive surrogate for 99 TcO 4 – ) conversion efficiency is directly dependent on the content of OVs, which allows for the rapid photocatalytic reduction of Re(VII). Significantly, under simulated sunlight irradiation at pH = 2, 2D TiO 2 -500 °C reduced to 97.0% Re(VII) (20 mg/L) within 180 min. A reducing radical (·CO 2 – )-mediated pathway was proposed to account for the high-efficiency reduction of Re(VII) to Re(IV). During Re(VII) photoreduction, OVs can not only promote the adsorption of reactants but also effectively reduce the conversion barrier for the reducing radicals (·CO 2 – ), providing a convenient channel for the rapid reduction of Re(VII). This study reveals the mechanism of OVs during the photoreductive transformation of Tc(VII)/Re(VII) comprehensively.
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