论文标题

分层铁电cuinp上的银纳米结构的光化学沉积$ _2 $ s6

Tunable photochemical deposition of silver nanostructures on layered ferroelectric CuInP$_2$S6

论文作者

Kong, Fanyi, Zhang, Lei, Cong, Tianze, Wu, Zhiwei, Liu, Kun, Sun, Changsen, Pan, Lujun, Li, Dawei

论文摘要

2D分层的铁电材料,例如Cuinp $ _2 $ S6(CIPS)是新颖和高性能的光催化剂的有前途的候选人,拥有其超薄层厚度,牢固的层间耦合以及固有的自发性极化,同时如何控制影像活性活动的cips in Loopered Cips in Loaneplecred。在这项工作中,我们首次报告了铁电CIP的光催化活性用于银纳米结构(AGNSS)。结果表明,通过控制层厚度,环境温度和光波长,AGNS在CIP上的形状和空间分布可调节。 CIPS中的铁电极化在可调AGN的光沉积中起着至关重要的作用,这是由层厚度和温度依赖性实验所证明的。我们进一步揭示了AGNS光沉积过程从活跃的位点创建,选择性纳米颗粒成核/聚集到连续的膜形成。此外,通过光沉积制备的AGN/CIPS异质结构表现出出色的阻力开关行为和良好的表面增强拉曼散射活性。我们的发现提供了对分层铁电的光催化活性的新见解,并为智能磁带和增强化学传感器的高级功能设备应用提供了新的材料平台。

2D layered ferroelectric materials such as CuInP$_2$S6 (CIPS) are promising candidates for novel and high-performance photocatalysts, owning to their ultrathin layer thickness, strong interlayer coupling, and intrinsic spontaneous polarization, while how to control the photocatalytic activity in layered CIPS remains unexplored. In this work, we report for the first time the photocatalytic activity of ferroelectric CIPS for the chemical deposition of silver nanostructures (AgNSs). The results show that the shape and spatial distribution of AgNSs on CIPS are tunable by controlling layer thickness, environmental temperature, and light wavelength. The ferroelectric polarization in CIPS plays a critical role in tunable AgNS photodeposition, as evidenced by layer thickness and temperature dependence experiments. We further reveal that AgNS photodeposition process starts from the active site creation, selective nanoparticle nucleation/aggregation, to the continuous film formation. Moreover, AgNS/CIPS heterostructures prepared by photodeposition exhibit excellent resistance switching behavior and good surface enhancement Raman Scattering activity. Our findings provide new insight into the photocatalytic activity of layered ferroelectrics and offer a new material platform for advanced functional device applications in smart memristors and enhanced chemical sensors.

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