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Defect-controlled halogenating properties of lanthanide-doped ceria nanozymes

机译:Defect-controlled卤化的属性lanthanide-doped二氧化铈nanozymes

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Marine organisms combat bacterial colonization by biohalogenation of signaling compounds that interfere with bacterial communication. These reactions are catalyzed by haloperoxidase enzymes, whose activity can be emulated by nanoceria using milli- and micromolar concentrations of Br− and H2O2. We show that the haloperoxidase-like activity of nanoceria can greatly be enhanced by Ln substitution in Ce1−xLnxO2−x/2. Non-agglomerated nanosized Ce1−xLnxO2−x/2 (Ln = Pr, Tb, particle size < 10 nm) was prepared mechanochemically from CeCl3 and Na2CO3 followed by short calcination. Lanthanide metals could be incorporated into the CeO2 host without solubility limit, as shown for Tb. The distribution of the Ln3+ defect sites in the CeO2 host structure was analyzed by electron spin resonance spectroscopy. Ce3+ and superoxide O2− species are present at surface sites. Their formation is promoted by increasing dopant concentration. Ce1−xLnxO2−x/2 was prepared in copious amounts by ball-milling. This energy-saving and residue-free method can be upscaled to industrial scale. The surface defect chemistry of Ce1−xLnxO2−x/2 was unravelled by vibrational spectroscopy. It is associated with the mechanochemical preparation and leads to enhanced catalytic activity. Although Ce0.9Pr0.1O1.95 had a lower BET surface area than pure CeO2, its catalytic activity, calibrated by oxidative bromination of phenol red, was much higher because the ζ-potential increased from 15 mV (for CeO2) to 30 mV (for Ce0.9Pr0.1O1.95). This facilitates adsorption of Br− in aqueous conditions and explains the high catalytic activity of the Ln-substituted CeO2. Ce1−xLnxO2−x/2 is an effective and “green” nanoparticle haloperoxidase mimic for antifouling applications, as no chemicals other than the ubiquitous Br− and H2O2 (generated in daylight) are required, and only natural metabolites are released into the environment.
机译:海洋生物战斗细菌殖民化biohalogenation信号的化合物干扰细菌的传播。反应是由haloperoxidase催化的可以模拟酶的活动nanoceria使用毫微摩尔的Br−和过氧化氢的浓度。haloperoxidase-like nanoceria活动大大提高Ln替换Ce1−xLnxO2−x - 2。Ce1−xLnxO2−x / 2 (Ln =公关、结核病、粒径< 10海里)是机械化学的CeCl3和准备的Na2CO3短煅烧紧随其后。金属可以被纳入CeO2主机没有溶解极限,如图所示为结核病。分布的Ln3 + CeO2缺陷网站主机结构分析了电子自旋磁共振光谱学。物种存在表面处。通过增加掺杂剂形成提升浓度。大量通过球磨。节能和残留物的方法高档工业规模。化学Ce1−xLnxO2−x / 2彻底瓦解了振动光谱。机械化学的准备,导致增强的催化活性。Ce0.9Pr0.1O1.95打赌面积低于纯CeO2,其催化活性,校准氧化溴化酚红的高,因为ζ可能性从15增加这有助于吸附水的Br−条件和高催化解释道活动的Ln-substituted CeO2。Ce1−xLnxO2−x / 2是一种有效的和“绿色”纳米防污haloperoxidase模仿除了应用程序,因为没有化学物质无处不在的Br−和过氧化氢(在白天生成)是必需的,只有自然代谢产物是什么释放到环境中。

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