TY - JOUR
T1 - Ultrafast laser-induced integrated property-structure modulation of Ge2Sb2Te5for multifunction and multilevel rewritable optical recording
AU - Zhao, Kang
AU - Han, Weina
AU - Han, Zihao
AU - Zhang, Xiaobin
AU - Zhang, Xingyi
AU - Duan, Xiaofeng
AU - Wang, Mengmeng
AU - Yuan, Yanping
AU - Zuo, Pei
N1 - Publisher Copyright:
© 2022 Kang Zhao et al., published by De Gruyter, Berlin/Boston.
PY - 2022/8/1
Y1 - 2022/8/1
N2 - In this paper, we report an approach for tuning the surface morphology and phase of Ge2Sb2Te5 (GST) by using an ultrafast laser in a one-step process. Four surface micro/nanostructures with specific phase states were sequentially formed by changing the pulse energy: the modified ripple structure, the completely crystallized structure, the ablated nanodots, and the ablated ripple structure. A high correlation existed between the surface micro/nanostructures and their property. Through integrated property-structure modulation, multifunctional optical recording could be achieved by using modified ripples with specific crystallized phase states. The geometric grating morphology caused by the volume shrinkage effect during crystallization enabled modified ripples to exhibit a structural color based on the grating's diffraction effect. Moreover, the considerable change in the reflectivity of the crystallized area enabled easy grayscale identification. On the basis of the spatially resolved phase-transition threshold effect, the integrated modulation of the geometric nanograting proportion and degree of crystallization was conducted in multilevel states. Notably, different from the fixed ablated surface structures, the printed modified surface structures could be erased and rewritten by controlling its phase state. This paper presents a promising method for producing dynamic tunable metasurfaces, conducting optical anticounterfeiting, and achieving information storage.
AB - In this paper, we report an approach for tuning the surface morphology and phase of Ge2Sb2Te5 (GST) by using an ultrafast laser in a one-step process. Four surface micro/nanostructures with specific phase states were sequentially formed by changing the pulse energy: the modified ripple structure, the completely crystallized structure, the ablated nanodots, and the ablated ripple structure. A high correlation existed between the surface micro/nanostructures and their property. Through integrated property-structure modulation, multifunctional optical recording could be achieved by using modified ripples with specific crystallized phase states. The geometric grating morphology caused by the volume shrinkage effect during crystallization enabled modified ripples to exhibit a structural color based on the grating's diffraction effect. Moreover, the considerable change in the reflectivity of the crystallized area enabled easy grayscale identification. On the basis of the spatially resolved phase-transition threshold effect, the integrated modulation of the geometric nanograting proportion and degree of crystallization was conducted in multilevel states. Notably, different from the fixed ablated surface structures, the printed modified surface structures could be erased and rewritten by controlling its phase state. This paper presents a promising method for producing dynamic tunable metasurfaces, conducting optical anticounterfeiting, and achieving information storage.
KW - GeSbTe
KW - grayscale identification
KW - integrated property-structure modulation
KW - multifunctional and multilevel rewritable storage
KW - ultrafast laser
KW - visual structural color
UR - http://www.scopus.com/inward/record.url?scp=85130881470&partnerID=8YFLogxK
U2 - 10.1515/nanoph-2022-0133
DO - 10.1515/nanoph-2022-0133
M3 - Article
AN - SCOPUS:85130881470
SN - 2192-8606
VL - 11
SP - 3101
EP - 3113
JO - Nanophotonics
JF - Nanophotonics
IS - 13
ER -