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The identification of hydroxyl groups on ZnO nanoparticles by infrared spectroscopy

机译:红外光谱法鉴定ZnO纳米颗粒上的羟基

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The interaction of water with ZnO nanoparticles has been studied by means of diffuse reflectance infrared spectroscopy (DRIFTS) and ultra-high vacuum FTIR spectroscopy (UHV-FTIRS). Exposing clean ZnO powder to water at 323 K leads to both molecular and dissociative adsorption of H2O forming a number of hydroxyl species. All the OH bands are clearly identified by the adsorption of D2O showing the expected isotopic shifts. According to the vibrational and thermal stability data obtained from single crystal surfaces, the OH species observed on ZnO nanoparticles are identified as follows: (1) OH group (3620 cm~(-1)) on the polar O-ZnO(0001) surface formed via dissociation of water on oxygen vacancy sites; (2) partial dissociation of water on the mixed-terminated ZnO(1010) surface yielding coexistent H2O (~3150 and 3687 cm~(-1)) and OH species (3672 cm~(-1)), where the molecularly adsorbed H2O is further identified by the characteristic scissoring mode at 1617 cm~(-1); (3) isolated OH species (3639 and 3656 cm~(-1)) formed on the mixed-terminated ZnO(1010) surface; (4) interaction of water with defects forming hydroxyl (or O-H···O) species (3564 and 3448 cm~(-1)).
机译:通过漫反射红外光谱(DRIFTS)和超高真空FTIR光谱(UHV-FTIRS)研究了水与ZnO纳米粒子的相互作用。将纯净的ZnO粉在323 K的水中暴露会导致H2O的分子吸附和解离吸附,从而形成许多羟基。通过显示预期的同位素位移的D2O吸附可以清楚地识别所有OH谱带。根据从单晶表面获得的振动和热稳定性数据,可以确定在ZnO纳米颗粒上观察到的OH种类如下:(1)极性O-ZnO(0001)表面上的OH基团(3620 cm〜(-1))。通过水在氧空位上的离解而形成的; (2)水在混合终止的ZnO(1010)表面上部分解离,产生并存的H2O(〜3150和3687 cm〜(-1))和OH种类(3672 cm〜(-1)),其中分子吸附的H2O通过在1617 cm〜(-1)处的特征剪切模式进一步确定; (3)在混合末端的ZnO(1010)表面形成孤立的OH种类(3639和3656 cm〜(-1)); (4)水与形成羟基(或O-H···O)的缺陷(3564和3448 cm〜(-1))相互作用。

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