论文标题

自旋状态的定向合成> 20微米2D层次过渡金属氢氧化物通过边缘凝结

Spin-state Directed Synthesis of >20 micrometers 2D Layered Transition Metal Hydroxides via Edge-on Condensation

论文作者

Ping, Lu, Minarik, Gillian E., Gao, Hongze, Cao, Jun, Li, Tianshu, Kitadai, Hikari, Ling, Xi

论文摘要

分层过渡金属氢氧化物(LTMHS),其夹在氢氧化物阴离子层之间的过渡金属中心夹着过渡金属中心,引起了人们对开发清洁能源和储存技术的潜力的极大兴趣。但是,在其物理特性和电子设备中的应用方面,二维(2D)LTMH在很大程度上仍未被研究。在这里,由3D过渡金属(TM)离​​子(例如Ni,Co,Cu)的旋转状态和晶体场的相应几何形状的关系指导,我们发现具有完美OH对称性的Ni2+非常适合lanaNAR内生长,导致>20μMMIMα-Ni(OH)2D 2D水晶的实现,这是高产,这是高产,这是该群体,该公司是该群体,该公司是SO SO SO SOR far and anf rar far and rar far a rar far。我们还报告了2D CO(OH)2晶体(>40μm)的成功合成,由于电子数量不稳定而导致的几何变形,产量较小。此外,进行了合成α-Ni(OH)2的详细结构表征;从光吸收测量值中将光带隙能推断为2.54 eV,并根据反射电子能量损耗光谱法(卷轴)测量为2.50 eV,这表明电势是电子设备的绝缘2D介电材料。此外,系统调整了水热反应的关键参数,包括浸泡温度,起始pH和冷却速率,以了解它们对形态和晶体学角度的影响,从而建立2D生长机制。这项工作证明了从简单方法中合成大型2D LTMHS的可扩展途径,为研究2D LTMHS的基本物理特性和设备应用铺平了道路。

Layered transition metal hydroxides (LTMHs) with transition metal centers sandwiched between layers of coordinating hydroxide anions have attracted considerable interest for their potential in developing clean energy sources and storage technologies. However, two dimensional (2D) LTMHs remain largely unstudied in terms of their physical properties and the applications in electronic devices. Here, directed by the relationship of the spin state of 3d transition metal (TM) ions such as Ni, Co, Cu, and the corresponding geometry of the crystal field, we discover that Ni2+ with perfect Oh symmetry is ideal for intraplanar growth, leading to the achievement of >20 μm α-Ni(OH)2 2D crystals with high yield, which are the largest 2D domains reported so far. We also report the successful synthesis of 2D Co(OH)2 crystals (>40 μm) with less yield due to the slight geometry distortion resulted from uneven number of electrons. Moreover, the detailed structural characterization of synthesized α-Ni(OH)2 are performed; the optical band gap energy is extrapolated as 2.54 eV from optical absorption measurements and is measured as 2.50 eV from reflected electrons energy loss spectroscopy (REELS), suggesting the potential as insulating 2D dielectric material for electronic devices. Furthermore, key parameters of the hydrothermal reaction including soaking temperature, starting pH and cooling rate, are systematically tuned to understand their effects on morphological and crystallographic perspectives, allowing the establishment of a 2D growth mechanism. This work demonstrates a scalable pathway to synthesize large 2D LTMHs from simple methods, paving the way for the study of fundamental physical properties and device applications of 2D LTMHs.

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