TY - JOUR
T1 - Anisotropic Crystallographic Engineering of α-MoO3
AU - Liu, Qiyao
AU - Li, Zhipeng
AU - Ma, Xuezhi
AU - Liu, Qiushi
AU - Wei, Fengxia
AU - Teo, Siew Lang
AU - Duan, Ruihuan
AU - Rachmawisista, Adrianzka Mayreswara Dewa
AU - Zhang, Yueqian
AU - Lee, Coryl Jing Jun
AU - Deng, Jie
AU - Huang, Aihong
AU - Luo, Ping
AU - Hui, Hui Kim
AU - Yap, Sherry Lee Koon
AU - Zhao, Meng
AU - Ji, Rong
AU - Luo, Yu
AU - Liu, Zheng
AU - Wang, Qian
N1 - Publisher Copyright:
© 2025 American Chemical Society.
PY - 2025
Y1 - 2025
N2 - The α-phase molybdenum trioxide (α-MoO3), a biaxial hyperbolic van der Waals (vdW) crystal, supports highly confined and anisotropic phonon polaritons (PhPs), positioning it as a superior platform for mid-infrared light manipulation. The performance of PhP-based devices critically depends on the properties of α-MoO3 flakes, including their thickness, roughness, and pattern geometry. However, conventional patterning techniques, such as ion beam milling and plasma etching, often introduce doping artifacts and surface damage, resulting in high PhP losses. In this work, we develop a hot-water-based technique for the crystallographic engineering of α-MoO3, leveraging its anisotropic etching properties for surface polishing and nanopatterning. This method exploits the notably higher etching rate along intralayer directions ([100], [001]) compared to the interlayer direction ([010]). Consequently, a 24% enhancement in PhP lifetime was observed in RIE-treated α-MoO3 flakes after hot water polishing, with no measurable change in material thickness. To further validate this technology, we fabricated various two-dimensional PhP manipulation devices using standard nanopatterning and thinning processes, followed by chemical-free hot water anisotropic crystallographic etching. This approach enabled the creation of nanoresonators, lenses, nanocavities, and unidirectional emitters with sharp edges precisely aligned along the crystallographic planes. Our crystallographic engineering approach unlocks precise control of surface waves at the nanoscale, facilitating the development of photonic devices for cutting-edge nanophotonic and nanoscale sensing applications.
AB - The α-phase molybdenum trioxide (α-MoO3), a biaxial hyperbolic van der Waals (vdW) crystal, supports highly confined and anisotropic phonon polaritons (PhPs), positioning it as a superior platform for mid-infrared light manipulation. The performance of PhP-based devices critically depends on the properties of α-MoO3 flakes, including their thickness, roughness, and pattern geometry. However, conventional patterning techniques, such as ion beam milling and plasma etching, often introduce doping artifacts and surface damage, resulting in high PhP losses. In this work, we develop a hot-water-based technique for the crystallographic engineering of α-MoO3, leveraging its anisotropic etching properties for surface polishing and nanopatterning. This method exploits the notably higher etching rate along intralayer directions ([100], [001]) compared to the interlayer direction ([010]). Consequently, a 24% enhancement in PhP lifetime was observed in RIE-treated α-MoO3 flakes after hot water polishing, with no measurable change in material thickness. To further validate this technology, we fabricated various two-dimensional PhP manipulation devices using standard nanopatterning and thinning processes, followed by chemical-free hot water anisotropic crystallographic etching. This approach enabled the creation of nanoresonators, lenses, nanocavities, and unidirectional emitters with sharp edges precisely aligned along the crystallographic planes. Our crystallographic engineering approach unlocks precise control of surface waves at the nanoscale, facilitating the development of photonic devices for cutting-edge nanophotonic and nanoscale sensing applications.
KW - crystallographic engineering
KW - nanopatterning
KW - nanophotonics
KW - surface phonon polariton manipulation
KW - α-MoO
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U2 - 10.1021/acsnano.5c07199
DO - 10.1021/acsnano.5c07199
M3 - Article
AN - SCOPUS:105006688965
SN - 1936-0851
JO - ACS Nano
JF - ACS Nano
ER -