首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Cu-Al2O3-g-C3N4 and Cu-Al2O3-C-dots with dual-reaction centres for simultaneous enhancement of Fenton-like catalytic activity and selective H2O2 conversion to hydroxyl radicals
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Cu-Al2O3-g-C3N4 and Cu-Al2O3-C-dots with dual-reaction centres for simultaneous enhancement of Fenton-like catalytic activity and selective H2O2 conversion to hydroxyl radicals

机译:具有双反应中心的Cu-Al2O3-G-C3N4和Cu-Al2O3-C点,用于同时增强Fenton样催化活性和选择性H 2 O 2转化为羟基自由基

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Cu-Al2O3-g-C3N4 and Cu-Al2O3-C-dots were synthesized for the first time to enhance the catalytic activity and utilization of H2O2. SEM, TEM, XPS, FT-IR, XRD, TPR and solid-state EPR were used to characterize the catalysts. In the Cu-Al2O3-g-C3N4 system, the electron-rich centre of Cu and electron-deficient site of Al were formed due to the higher electronegativity of Cu. Moreover, Cu ions could coordinate with the hydroxyl on the tri-s-triazine ring of g-C3N4 or the graphene conjugated pi-domains of C-dots via the Cu-O-C linkage so that the orbital interactions involving electron transport from pi - Cu also induced the formation of an electron-rich Cu centre and an electron-deficient n-electron conjugated system, resulting in the strengthening of the dual-reaction centres. This mechanism was validated by Roman, EPR and XPS spectra. In addition, EPR experiments demonstrated that two electron-transfer processes formed center dot OH in the presence of H2O2. The first electron transfer was from the electron-rich Cu centres to H2O2, and the other was from H2O to the electron-deficient site. Thus, more center dot OH were generated and high H2O2 utilization was achieved in the Cu-Al2O3-g-C3N4 and Cu-Al2O3-C-dots suspension. Furthermore, the turnover frequency (TOF) for the Cu-Al2O3-C-dots and Cu-Al2O3-g-C3N4 dispersions were determined and were found to be much higher than those of the classic homogeneous Fenton reaction. Thus, Cu-Al2O3-g-C3N4 and Cu-Al2O3-C-dots showed high activity and stability for the catalytic degradation of organic pollutants under mild conditions.
机译:首次合成Cu-Al 2 O 3-G-C3N4和Cu-Al 2 O 3 -C点,以增强H 2 O 2的催化活性和利用率。 SEM,TEM,XPS,FT-IR,XRD,TPR和固态EPR用于表征催化剂。在Cu-Al2O3-G-C3N4系统中,由于Cu的电负电负性,形成了Al的富含电子的Cu和电子缺陷部位。此外,Cu离子可以通过Cu-oc连杆与G-C3N4的Tri-S-三嗪环的羟基或C点的石墨烯共轭PI-结构域坐标,从而涉及来自PI的电子传输的轨道相互作用 - &GT ; Cu还诱导形成富含电子的Cu中心和电子缺陷的N-电子共轭系统,导致双反应中心的强化。该机制由罗马,EPR和XPS光谱验证。此外,EPR实验证明,在H 2 O 2存在下,两种电子转移过程形成了中心点OH。第一电子转移来自富含电子的Cu中心至H 2 O 2,另一个是从H 2 O到电子缺陷部位。因此,在Cu-Al 2 O 3-G-C3N4和Cu-Al 2 O 3-C点悬浮液中获得了更多的中心点OH,并且在Cu-Al 2 O 3-G-C-C点悬浮中获得了高H2O2利用率。此外,确定了Cu-Al2O3-C点和Cu-Al 2 O 3-G-C3N4分散体的周转频率(TOF),并被发现远高于经典均匀的芬顿反应。因此,Cu-Al 2 O 3 -G-C3N4和Cu-Al 2 O 3-C点显示出高度活性和稳定性,用于在温和条件下催化污染物的催化降解。

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