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Featured researches published by Songhong Zhang.


Journal of Chromatography A | 2012

Microchannel liquid-flow focusing and cryo-polymerization preparation of supermacroporous cryogel beads for bioseparation

Junxian Yun; Changming Tu; Dong-Qiang Lin; Linhong Xu; Yantao Guo; Shaochuan Shen; Songhong Zhang; Kejian Yao; Yi-Xin Guan; Shan-Jing Yao

Polymeric cryogels are sponge-like materials with supermacroporous structure, allowing them to be of interest as new chromatographic supports, cell scaffolds and drug carriers in biological and biomedical areas. The matrices of cryogels are always prepared in the form of monoliths by cryo-polymerization under frozen conditions. However, there are limited investigations on the production of cryogels in the form of adsorbent beads suitable for bioseparation. In this work, we provide a new approach by combining the microchannel liquid-flow focusing with cryo-polymerization for the preparation of polyacrylamide-based supermacroporous cryogel beads with a narrow particle size distribution. The present method was achieved by introducing the aqueous phase solution containing monomer, cross-linker and redox initiators, and the water-immiscible organic oil phase containing surfactant simultaneously into a microchannel with a cross-shaped junction, where the aqueous drops with uniform sizes were generated by the liquid shearing and the segmentation due to the steady flow focusing of the immiscible phase streams. These liquid drops were in situ suspended into the freezing bulk oil phase for cryo-polymerization and the cryogel matrix beads were obtained by thawing after the achievement of polymerization. By grafting the polymer chains containing sulfo binding groups onto these matrix beads, the cation-exchange cryogel beads for protein separation were produced. The results showed that at the aqueous phase velocities from 0.5 to 2.0 cm/s and the total velocities of the water-immiscible phase from 2.0 to 6.0 cm/s, the obtained cryogel beads by the present method have narrow size distributions with most of the bead diameters in the range from 800 to 1500 μm with supermacropores in sizes of about 3-50 μm. These beads also have high porosities with the averaged maximum porosity of 96.9% and the mean effective porosity of 86.2%, which are close to those of the polyacrylamide-based cryogel monoliths. The packed bed using the cryogel beads with mean diameter of 1248 μm, as an example, has reasonable and acceptable liquid dispersion, but high water permeability (4.29 × 10⁻¹⁰ m²) and high bed voidage (90.2%) owing to the supermacropores within the beads, enhanced the rapid binding and separation of protein from the feedstock even at high flow velocities. The purity of the obtained lysozyme from chicken egg white by one-step chromatography using the packed bed was in the range of about 78-92% at the flow velocities of 0.5-15 cm/min, indicating that the present cryogel beads could be an effective chromatographic adsorbent for primary bioseparation.


Chinese Journal of Chemical Engineering | 2011

Density and Viscosity of Ternary Systems (Poloxamer 188 + Ethanol/Acetone + Water) at Temperatures from 288.15 K to 308.15 K

Songhong Zhang; Shaochuan Shen; Junxian Yun; Kejian Yao

Abstract The densities and viscosities of ternary systems (Poloxamer 188 + ethanol/acetone + water) were measured at 288.15, 293.15, 298.15, 303.15, 308.15 K and atmospheric pressure for different mass fractions of Poloxamer 188 (0 to 0.02) in aqueous solution and different solvent volume fractions of ethanol/acetone (0 to 0.3) in Poloxamer 188 aqueous solution. The densities were measured by a pycnometer, while the viscosities were measured using two Ubbelohde capillary viscometers. The correlations of density and viscosity of these ternary systems are obtained by fitting the experimental data at different temperatures, mass fractions and volume fractions.


Chemical Engineering Science | 2009

Continuous production of solid lipid nanoparticles by liquid flow-focusing and gas displacing method in microchannels

Junxian Yun; Songhong Zhang; Shaochuan Shen; Zhuo Chen; Kejian Yao; Jizhong Chen


Chemical Engineering Science | 2008

Formation of solid lipid nanoparticles in a microchannel system with a cross-shaped junction

Songhong Zhang; Junxian Yun; Shaochuan Shen; Zhuo Chen; Kejian Yao; Jizhong Chen; Bingbing Chen


Chemical Engineering Journal | 2008

Preparation of solid lipid nanoparticles in co-flowing microchannels

Songhong Zhang; Shaochuan Shen; Zhuo Chen; Junxian Yun; Kejian Yao; Bingbing Chen; Jizhong Chen


Chemical Engineering Science | 2010

Slug flow characteristics of gas–miscible liquids in a rectangular microchannel with cross and T-shaped junctions

Junxian Yun; Qiang Lei; Songhong Zhang; Shaochuan Shen; Kejian Yao


Industrial & Engineering Chemistry Research | 2012

Formulation of Poorly Water-Soluble Compound Loaded Solid Lipid Nanoparticles in a Microchannel System Fabricated by Mechanical Microcutting Method: Puerarin as a Model Drug

Linhong Xu; Xu Tan; Junxian Yun; Shaochuan Shen; Songhong Zhang; Changming Tu; Wei Zhao; Bing Tian; Gensheng Yang; Kejian Yao


Industrial & Engineering Chemistry Research | 2016

Fabrication and Use of Alginate-Based Cryogel Delivery Beads Loaded with Urea and Phosphates as Potential Carriers for Bioremediation

Lishen Shan; Yunling Gao; Yuanchang Zhang; Wubin Yu; Yujun Yang; Shaochuan Shen; Songhong Zhang; Lingyu Zhu; Linhong Xu; Bing Tian; Junxian Yun


Chemical Engineering Research & Design | 2014

Immiscible liquid–liquid slug flow characteristics in the generation of aqueous drops within a rectangular microchannel for preparation of poly(2-hydroxyethylmethacrylate) cryogel beads

Wei Zhao; Songhong Zhang; Meizhen Lu; Shaochuan Shen; Junxian Yun; Kejian Yao; Linhong Xu; Dong-Qiang Lin; Yi-Xin Guan; Shan-Jing Yao


Journal of Chemical & Engineering Data | 2010

Solubility of Softisan 100 in Ethanol + Water and Acetone + Water Solutions

Qiang Lei; Songhong Zhang; Junxian Yun; Shaochuan Shen; Kejian Yao

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Junxian Yun

Zhejiang University of Technology

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Shaochuan Shen

Zhejiang University of Technology

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Kejian Yao

Zhejiang University of Technology

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Linhong Xu

China University of Geosciences

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Zhuo Chen

Zhejiang University of Technology

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Bingbing Chen

Zhejiang University of Technology

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Changming Tu

Zhejiang University of Technology

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