Area of research
Electrical and Electronic Engineering · Biomedical Engineering
Research interest
Research interests include Nanoplatforms for cancer theranostics, Nanoparticle-Based Drug Delivery, Semiconductor materials and devices, and Wireless Networks and Protocols.
Biodegradable Hyperbranched Poly(Amine‐Co‐Ester)‐Based Polymeric Nanoparticles for mRNA Delivery
Unveiling the Impact of AC PBTI on Hydrogen Formation in Oxide Semiconductor Transistors
Electrical switching of ferro-rotational order in nanometre-thick 1T-TaS2 crystals
Unveiling the Influence of Channel Thickness on PBTI and LFN in Sub-10 nm-thick IGZO FETs: A Holistic Perspective for Advancing Oxide Semiconductor Devices
Novel a-IGZO Anti-Ferroelectric FET LIF Neuron with Co-Integrated Ferroelectric FET Synapse for Spiking Neural Networks
New Insights into the Impact of Hydrogen Evolution on the Reliability of IGZO FETs: Experiment and Modeling
Boosting the Memory Window of the BEOL-Compatible MFMIS Ferroelectric/ Anti-Ferroelectric FETs by Charge Injection
Heterobifunctional PEG-grafted black phosphorus quantum dots: “Three-in-One” nano-platforms for mitochondria-targeted photothermal cancer therapy
Black phosphorus nanosheets-based stable drug delivery system via drug-self-stabilization for combined photothermal and chemo cancer therapy
Folic Acid-Functionalized Black Phosphorus Quantum Dots for Targeted Chemo-Photothermal Combination Cancer Therapy
Mesenchymal stem cells transporting black phosphorus-based biocompatible nanospheres: Active trojan horse for enhanced photothermal cancer therapy
Polydopamine‐Modified Black Phosphorous Nanocapsule with Enhanced Stability and Photothermal Performance for Tumor Multimodal Treatments
A multifunctional nanoplatform for cancer chemo-photothermal synergistic therapy and overcoming multidrug resistance
Self-controlled release of Oxaliplatin prodrug from d-α-tocopheryl polyethylene glycol 1000 succinate (TPGS) functionalized mesoporous silica nanoparticles for cancer therapy
A Drug‐Self‐Gated Mesoporous Antitumor Nanoplatform Based on pH‐Sensitive Dynamic Covalent Bond
A drug-self-gated and tumor microenvironment-responsive mesoporous silica vehicle: “four-in-one” versatile nanomedicine for targeted multidrug-resistant cancer therapy
Co-delivery of docetaxel and bortezomib based on a targeting nanoplatform for enhancing cancer chemotherapy effects
Docetaxel (DTX)-loaded polydopamine-modified TPGS-PLA nanoparticles as a targeted drug delivery system for the treatment of liver cancer
Polydopamine-based surface modification of mesoporous silica nanoparticles as pH-sensitive drug delivery vehicles for cancer therapy