Linfeng Xiong
East China Normal University
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Publication
Featured researches published by Linfeng Xiong.
Polymer Chemistry | 2016
Hui Zhang; Linfeng Xiong; Zidong He; Aiqing Zhong; Tianqi Wang; Yang Xu; Minghong Zhou; Kun Huang
In this paper, we report a novel synthesis of amino-functionalized microporous organic nanotube networks (NH2-MONNs) by combination of hyper cross-linking and molecular templating of multicomponent bottlebrush copolymers. The amino-modified MONNs constructed from a unique trimodal micro, meso and macroporous architecture and flexible frameworks possess a specific surface area of 936 m2 g−1 and a pore volume of 1.67 cm3 g−1. Owing to the large surface area, good multi-porosity interconnectivity and excellent swelling properties in organic solvents, the resultant NH2-MONNs show highly efficient heterogeneous catalysis and excellent reusability in the Knoevenagel condensation and Henry reaction.
New Journal of Chemistry | 2016
Hui Zhang; Linfeng Xiong; Zidong He; Aiqing Zhong; Tianqi Wang; Yang Xu; Kun Huang
In this work, we reported a novel synthesis of acid or base functionalized microporous organic nanotube networks (MONNs) by hyper-crosslinking core–shell bottlebrush copolymers. With a high specific surface area, excellent hierarchical porosity and site-isolation features, the resultant SO3H– and NH2–MONNs catalyst systems present an excellent catalytic performance for deacetalization-Knoevenagel cascade reactions.
Macromolecular Rapid Communications | 2016
Zidong He; Aiqing Zhong; Hui Zhang; Linfeng Xiong; Yang Xu; Tianqi Wang; Minghong Zhou; Kun Huang
Here, a novel method is demonstrated for the preparation of three-arm branched microporous organic nanotube networks (TAB-MONNs) based on molecular templating of three-arm branched core-shell bottlebrush copolymers and Friedel-Crafts alkylation reaction. The unique three-arm branched bottlebrush copolymers are synthesized by a combination of atom transfer radical polymerization, reversible addition-fragmentation chain transfer polymerization, and ring-opening polymerization techniques. In this approach, the length and diameter of branched tube units can be well-controlled by rational molecular design. Moreover, the as-prepared TAB-MONNs possess a high surface area and exhibit a superior adsorption capacity for Rhodamine 6G (R6G) and p-cresol.
Chemistry: A European Journal | 2015
Zidong He; Aiqing Zhong; Hui Zhang; Linfeng Xiong; Yang Xu; Tianqi Wang; Minghong Zhou; Kun Huang
A novel method for the in situ synthesis of dual-phase thermosensitive ultrasmall gold nanoparticles (USGNPs) with diameters in the range of 1-3 nm was developed by using poly(N-isopropylacrylamide)-block-poly(N-phenylethylenediamine methacrylamide) (PNIPAM-b-PNPEDMA) amphiphilic diblock copolymers as ligands. The PNPEDMA block promotes the in situ reduction of gold precursors to zero-valent gold and subsequently binds to the surface of gold nanoparticles, while PNIPAM acts as a stabilizing and thermosensitive block. The as-synthesized USGNPs stabilized by a thermosensitive PNIPAM layer exhibit a sharp, reversible, clear-opaque transition in aqueous solution between 30 and 38 °C. An unprecedented finding is that these USGNPs also show a reversible soluble-precipitate transition in nonpolar organic solvents such as chloroform at around 0 °C under acidic conditions.
Polymer Chemistry | 2017
Minghong Zhou; Hui Zhang; Linfeng Xiong; Zidong He; Tianqi Wang; Yang Xu; Kun Huang
Novel meso-tetraphenylporphyrin iron(III) chloride (Fe(TPP)Cl) functionalized microporous organic nanotube networks (Fe(TPP)Cl-MONNs) were successfully synthesized by an in situ hyper-crosslinking reaction between core–shell bottlebrush copolymers and Fe(TPP)Cl. The obtained Fe(TPP)Cl-MONN catalyst possesses a hierarchical porous structure, large surface area and good stability, which exhibits high catalytic activity and excellent reusability in the olefination of aldehydes and carbene insertion into N–H bonds with ethyl diazoacetate.
RSC Advances | 2016
Minghong Zhou; Hui Zhang; Linfeng Xiong; Zidong He; Aiqing Zhong; Tianqi Wang; Yang Xu; Kun Huang
In this work, we report a novel synthesis of magnetic microporous organic nanotube networks (Fe3O4-MONNs) by an in situ hyper-cross-linking reaction between magnetic nanoparticles and core–shell bottlebrush copolymers. The resulting Fe3O4-MONNs magnetic hybrid materials display a hierarchically porous structure with nanotube morphology, large surface area (648 m2 g−1) and uniform mesochannels (∼4 nm). Due to abundant anionic carboxylate groups produced as end-groups after polylactide (PLA) core degradation in the bottlebrush copolymers, the Fe3O4-MONNs showed a selective adsorption behavior for the cationic dyes. Moreover, the Fe3O4-MONNs possess superparamagnetism and high saturation magnetization (19.8 emu g−1), which allows them to be easily separated by an external magnetic field and subsequently reused. Therefore, this work provides a promising method for the design and synthesis of magnetic microporous organic nanotube networks, which can be used for the practical separation of organic dyes, as well as having other potential applications in the fields of absorption, fast separation and heterogeneous catalysis.
Chemical Communications | 2014
Linfeng Xiong; Hui Zhang; Aiqing Zhong; Zidong He; Kun Huang
Macromolecular Rapid Communications | 2016
Hui Zhang; Linfeng Xiong; Xiaojuan Liao; Kun Huang
Macromolecular Chemistry and Physics | 2017
Tianqi Wang; Yang Xu; Zidong He; Hui Zhang; Linfeng Xiong; Minghong Zhou; Wei Yu; Buyin Shi; Kun Huang
Journal of Physical Chemistry C | 2017
Hui Zhang; Minghong Zhou; Linfeng Xiong; Zidong He; Tianqi Wang; Yang Xu; Kun Huang