TY - JOUR
T1 - Periodic nanostructures
T2 - preparation, properties and applications
AU - Yin, Hang
AU - Xing, Kaijian
AU - Zhang, Yurou
AU - Dissanayake, D. M. Aradhana S.
AU - Lu, Ziyang
AU - Zhao, Haitao
AU - Zeng, Zhiyuan
AU - Yun, Jung-Ho
AU - Qi, Dong-Chen
AU - Yin, Zongyou
PY - 2021/6/7
Y1 - 2021/6/7
N2 - Periodic nanostructures, a group of nanomaterials consisting of single or multiple nano units/components periodically arranged into ordered patterns (e.g., vertical and lateral superlattices), have attracted tremendous attention in recent years due to their extraordinary physical and chemical properties that offer a huge potential for a multitude of applications in energy conversion, electronic and optoelectronic applications. Recent advances in the preparation strategies of periodic nanostructures, including self-assembly, epitaxy, and exfoliation, have paved the way to rationally modulate their ferroelectricity, superconductivity, band gap and many other physical and chemical properties. For example, the recent discovery of superconductivity observed in "magic-angle" graphene superlattices has sparked intensive studies in new ways, creating superlattices in twisted 2D materials. Recent development in the various state-of-the-art preparations of periodic nanostructures has created many new ideas and findings, warranting a timely review. In this review, we discuss the current advances of periodic nanostructures, including their preparation strategies, property modulations and various applications.
AB - Periodic nanostructures, a group of nanomaterials consisting of single or multiple nano units/components periodically arranged into ordered patterns (e.g., vertical and lateral superlattices), have attracted tremendous attention in recent years due to their extraordinary physical and chemical properties that offer a huge potential for a multitude of applications in energy conversion, electronic and optoelectronic applications. Recent advances in the preparation strategies of periodic nanostructures, including self-assembly, epitaxy, and exfoliation, have paved the way to rationally modulate their ferroelectricity, superconductivity, band gap and many other physical and chemical properties. For example, the recent discovery of superconductivity observed in "magic-angle" graphene superlattices has sparked intensive studies in new ways, creating superlattices in twisted 2D materials. Recent development in the various state-of-the-art preparations of periodic nanostructures has created many new ideas and findings, warranting a timely review. In this review, we discuss the current advances of periodic nanostructures, including their preparation strategies, property modulations and various applications.
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U2 - 10.1039/d0cs01146k
DO - 10.1039/d0cs01146k
M3 - RGC 21 - Publication in refereed journal
C2 - 34100047
SN - 0306-0012
VL - 50
SP - 6423
EP - 6482
JO - Chemical Society Reviews
JF - Chemical Society Reviews
IS - 11
ER -