Haitao Liu
Dalian Institute of Chemical Physics, Chinese Academy of Sciences
Email: haitaol@dicp.ac.cn
Zhongshan Road 457, Dalian, Liaoning, 116023
Research Areas
Education
2015.09-2022.01, PhD, Dalian Institute of Chemical Physics, Chinese Academy of Sciences
2011.09-2015.06, B.S, Wuhan University
Experience
Work Experience
2024.07-present, Associate Professor, Dalian Institute of Chemical Physics, Chinese Academy of Sciences
2024.04-2024.07, Assistant Professor, Dalian Institute of Chemical Physics, Chinese Academy of Sciences
2021.10-2024.04, Postdoctor, Dalian Institute of Chemical Physics, Chinese Academy of Sciences
Publications
Papers
(2) Standard: human liver-on-a-chip, CELL REGENERATION, 2025
(3) Microfluidic-Assisted Pneumatic Droplet Generators Designed for Multiscenario Biomanufacturing with Favorable Biocompatibility and Extendibility, ACS Biomaterials Science & Engineering, 2024
(4) A Pump-Free Strategy for the Controllable Generation of Alginate Microgels as Cellular Microcarriers, ACS BIOMATERIALS SCIENCE & ENGINEERING, 2024
(5) Standard: human intestine-on-a-chip, CELL REGENERATION, 2024
(6) 水凝胶材料在类器官研究中的应用进展, Application of hydrogel materials for organoids, 中国科学 : 化学, 2024
(7) Advances in Skeletal Muscle Engineering in Biomedical Research, ADVANCED MATERIALS TECHNOLOGIES, 2023
(8) Advances in Microfluidic Technologies in Organoid Research, ADVANCED HEALTHCARE MATERIALS, 2023
(9) Recent advances in defined hydrogels in organoid research, Recent advances in defined hydrogels in organoid research, BIOACTIVE MATERIALS, 2023
(10) One-Step Generation of Porous GelMA Microgels by Droplet-Based Chaotic Advection Effect, ADVANCED MATERIALS TECHNOLOGIES, 2023
(11) 全水相微流控系统一步制备球丝异质载体用作细胞三维培养, One-step generation of droplet-filled hydrogel microfibers for3D cell culture using an all-aqueous microfluidic system, 色谱, 2023
(12) Vascularization of engineered organoids, BMEMAT, 2023
(13) Controllable Fabrication of Composite CoreShell Capsules at a Macroscale as Organoid Biocarriers, ACS Applied Bio Materials, 2021
(14) A flexible microfluidic strategy to generate grooved microfibers for guiding cell alignment, BIOMATERIALS SCIENCE, 2021
(15) One-Step Generation of Aqueous-Droplet-Filled Hydrogel Fibers as Organoid Carriers Using an All-in-Water Microfluidic System, ACS APPLIED MATERIALS & INTERFACES, 2021
(16) Flexible Generation of Multi-Aqueous Core Hydrogel Capsules Using Microfluidic Aqueous Two-Phase System, ADVANCED MATERIALS TECHNOLOGIES, 2020
(17) One-step synthesis of composite hydogel capsule to support liver organoids generation from hiPSCs, Biomaterials Science, 2020
(18) A Droplet Microfluidic System to Fabricate Hybrid Capsules Enabling Stem Cell Organoid Engineering, ADVANCED SCIENCE, 2020
(19) Advances in Hydrogels in Organoids and Organs-on-a-Chip, ADVANCED MATERIALS, 2019
(20) One-Step Generation of Core-Shell Gelatin Methacrylate (GelMA) Microgels Using a Droplet Microfluidic System, ADVANCED MATERIALS TECHNOLOGIES, 2019
(21) A Microfluidic Strategy for Controllable Generation of Water-in-Water Droplets as Biocompatible Microcarriers, SMALL, 2018
Patents
( 1 ) A one-step preparation method for porous microgels based on droplet microfluidics, CN117654385A
( 2 ) A method for local hydrophilic modification of glutathione on microfluidic chips based on laminar flow effect, CN114588956A
( 3 ) An aqueous two-phase based multi-liquid core hydrogel microcapsule chip and its application, CN112844501A
( 4 ) A muscle model construction method based on microfluidic chip, CN112852628A
( 5 )A 3D organoid engineering method based on aqueous two-phase droplet microfluidics, CN112852706A
( 6 )A microfluidic chip for preparing polyelectrolyte microcapsules by aqueous two-phase system and its application, CN112844499A
( 7 )A controlled fabrication method for inner grooved microfilaments based on microfluidic technology, CN112853510A
( 8 ) A one-step preparation method of polyelectrolyte microcapsules based on aqueous two-phase system, CN112844500A
( 9 ) A preparation method based on a single exposure circular table micropit array chip, CN111269832A
( 10 )A preparation method for wedge-shaped porous polydimethylsiloxane films, CN111269572B
( 11 ) Preparation method of sodium alginate-chitosan composite microcapsules based on aqueous two-phase system, CN111036154A
( 12 ) A method for in vitro vascularized 3D tissue preparation based on microprocessing technology, CN110607271A
( 13 ) A pneumatic valve-assisted high throughput droplet mcirofluidic chip with two aqueous phases, CN109833922A
( 14 ) A microfluidic technology based method for the preparation of high throughput and controllable aqueous two-phase droplets, CN109833921A
( 15 ) A method for the preparation of gelatin methylacrylamide core-shell microspheres for 3D cell culture, CN109806919A
( 16 ) A pneumatic valve-assisted two water phase droplet chip, CN109647546A
( 17 ) A method for the preparation of controlled aqueous two-phase droplets based on microfluidic technology, CN109647547A
( 18 ) A simple and controllable preparation method of grooved microfilaments based on microfluidic technology, CN109652310A
( 19 ) A preparation method for 3D cell culture hydrogel microspheres based on aqueous two-phase droplets, CN109652359A
( 20 ) A three-dimensional cell aggregation culture method, CN108795870A
( 21 ) A "pyramid" like three-dimensional cell aggregation culture chip and its preparation method, CN108795752A
( 22 ) A "funnel" like three-dimensional cell aggregation culture chip and its preparation method, CN108795751A
( 23 ) An in vitro model for nanoparticle exposure of extravillous trophoblast cells, CN108148758A
Conferences
(2) A Microfluidic Strategy for Controllable Generation of Water-inWater Droplets as Biocompatible Microcarriers 2018-11-11