Area of research
Renewable Energy, Sustainability and the Environment · Electrical and Electronic Engineering
Research interest
Research interests include Electrocatalysts for Energy Conversion, Fuel Cells and Related Materials, CAR-T cell therapy research, and 2D Materials and Applications.
Scalable and stretchable 1D multifunctional fibers for multimodal sensing and stimulation
Serotonin transporter inhibits antitumor immunity through regulating the intratumoral serotonin axis
Allogeneic CD33-directed CAR-NKT cells for the treatment of bone marrow-resident myeloid malignancies
Overcoming ovarian cancer resistance and evasion to CAR-T cell therapy by harnessing allogeneic CAR-NKT cells
Multimodal targeting of metastatic renal cell carcinoma via CD70-directed allogeneic CAR-NKT cells
Kilohertz volumetric imaging of in vivo dynamics using squeezed light field microscopy
Targeting orthotopic and metastatic pancreatic cancer with allogeneic stem cell–engineered mesothelin-redirected CAR-NKT cells
Biomaterials mimicking immunological synapses for enhanced T cell activation in CAR-T therapy
Generation of allogeneic CAR-NKT cells from hematopoietic stem and progenitor cells using a clinically guided culture method
Viscoelastic synthetic antigen-presenting cells for augmenting the potency of cancer therapies
Biomimetic cell stimulation with a graphene oxide antigen-presenting platform for developing T cell-based therapies
Non‐Invasive Detection of Early‐Stage Fatty Liver Disease via an On‐Skin Impedance Sensor and Attention‐Based Deep Learning
Rapid prediction of acute thrombosis via nanoengineered immunosensors with unsupervised clustering for multiple circulating biomarkers
A self-assembled implantable microtubular pacemaker for wireless cardiac electrotherapy
Experimental Sabatier plot for predictive design of active and stable Pt-alloy oxygen reduction reaction catalysts
Stability of Platinum‐Group‐Metal‐Based Electrocatalysts in Proton Exchange Membrane Fuel Cells
Direct correlation of oxygen adsorption on platinum-electrolyte interfaces with the activity in the oxygen reduction reaction
Highly Reliable Low-Voltage Memristive Switching and Artificial Synapse Enabled by van der Waals Integration
Tungsten as “Adhesive” in Pt<sub>2</sub>CuW<sub>0.25</sub> Ternary Alloy for Highly Durable Oxygen Reduction Electrocatalysis
Hollow Loofah‐Like N, O‐Co‐Doped Carbon Tube for Electrocatalysis of Oxygen Reduction
Approaching the Schottky–Mott limit in van der Waals metal–semiconductor junctions
Monolayer atomic crystal molecular superlattices
Building two-dimensional materials one row at a time: Avoiding the nucleation barrier
Few‐Layer GeAs Field‐Effect Transistors and Infrared Photodetectors
Ultrafine jagged platinum nanowires enable ultrahigh mass activity for the oxygen reduction reaction
Morphology and Phase Controlled Construction of Pt–Ni Nanostructures for Efficient Electrocatalysis
Pushing the Performance Limit of Sub-100 nm Molybdenum Disulfide Transistors
High-performance transition metal–doped Pt <sub>3</sub> Ni octahedra for oxygen reduction reaction
Toward Barrier Free Contact to Molybdenum Disulfide Using Graphene Electrodes
Near-Infrared Plasmonic-Enhanced Solar Energy Harvest for Highly Efficient Photocatalytic Reactions