Objective 1 Enabling technology development:
(1.1) designed methods of 2D material integrated silicon waveguides and optical fibers (Opt. Lett. 47, 734 (2022); Light:Adv. Manu.4,14(2023)).
(1.2) Fabrication method for large-scale (e.g. inkjet printing) of 2D crystals and their twisted structures (Sci. Adv.6,eaba502 (2020); Nat. Comm.11,2153(2020)).
(1.3) Deterministic optical modification method of 2D materials (Adv. Mater. Interf.2002119(2021); Adv. Funct. Mater.33,2302051(2023); 2D Mater. 10,045018(2023)).
Objective 2 Development of novel nonlinear optical devices with two-dimensional van der Waals superlattices:
(2.1) we report efficient modulation with van der Waals heterostructures with plasmonics and twist angle (Adv. Mater. 32,1907105 (2020); Adv. Funct. Mater.34,2310365(2024)).
(2.2) We report the ultrafast transient absorption of monolayer molybdenum disulfide in its sub-bandgap region from ~0.86 µm to 1.4 µm (Light: Sci. & Appl.10,27 (2021)).
(2.3) We report on an ultracompact microspectrometer design based on a single compositionally engineered nanowire (Science 365, 1017 (2019)) and heterostructures (Science,378,296(2022); Nat. Comm. 15, 571 (2024)).
(2.4) We demonstrate the gate-tunable interband resonant four-wave mixing and sum-frequency generation in monolayer MoS2 (ACS Nano 14, 8442 (2020)).
Objective 3 Development of novel nonlinear optical devices with 2DSs:
(3.1) we demonstrate difference frequency generation down to atomic thickness in molybdenum disulfide for the first time (Nanoscale 12, 19638 (2020)).
(3.2) we report the direct growth of MoS2, a highly nonlinear two-dimensional material, onto the internal walls of a SiO2 optical fibre. By using the as-fabricated 25-cm-long fibre, both second- and third-harmonic generation could be enhanced by ~300 times compared with monolayer MoS2/silica. (Nat. Nano.15 987 (2020)).
(3.3) We report enhanced terahertz emission from mushroom shaped InAs nanowire network (Nanotechnology,33,085207(2022)).
(3.4) We demonstrate mid-infrared analogue polaritonic reversed Cherenkov radiation in 2D materials (Nat. Comm.14,2532(2023)).
(3.5) We report chirality logic gates with 2D materials (Sci. Adv.,8, 49 (2022); Appl. Phys. Lett.123,240501(2023)).