TY - JOUR
T1 - Soluble Hyperbranched Porous Organic Polymers
AU - Yang, Yuwan
AU - Feng, Lingyun
AU - Ren, Jun
AU - Liu, Yunfei
AU - Jin, Shangbin
AU - Su, Li
AU - Wood, Colin
AU - Tan, Bien
N1 - Publisher Copyright:
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim
PY - 2018/11
Y1 - 2018/11
N2 - Soluble porous organic polymers (SPOPs) are currently the subject of extensive investigation due to the enhanced processability compared to insoluble counterparts. Here, a new concept for the construction of SPOPs is presented, which combines the unique topological structure of hyperbranched polymers with rigid building blocks. By using this facile, one-step strategy, a class of novel SPOPs which possess surface areas up to 646 m2 g−1 have been synthesized. The extended π-conjugated backbone affords the polymers bright fluorescence under UV irradiation. Interestingly, after dissolution in a suitable solvent that was slowly evaporated, the polymers retain a large extent of porosity. The SPOPs are potential candidates for gas storage and separation, photovoltaic, and biological applications. In particular, due to the presence of an internal porous structure and open conformations, they show high drug loading efficiency (1.91 g of ibuprofen per gram), which is considerably higher than conventional porous organic polymers.
AB - Soluble porous organic polymers (SPOPs) are currently the subject of extensive investigation due to the enhanced processability compared to insoluble counterparts. Here, a new concept for the construction of SPOPs is presented, which combines the unique topological structure of hyperbranched polymers with rigid building blocks. By using this facile, one-step strategy, a class of novel SPOPs which possess surface areas up to 646 m2 g−1 have been synthesized. The extended π-conjugated backbone affords the polymers bright fluorescence under UV irradiation. Interestingly, after dissolution in a suitable solvent that was slowly evaporated, the polymers retain a large extent of porosity. The SPOPs are potential candidates for gas storage and separation, photovoltaic, and biological applications. In particular, due to the presence of an internal porous structure and open conformations, they show high drug loading efficiency (1.91 g of ibuprofen per gram), which is considerably higher than conventional porous organic polymers.
KW - drug delivery
KW - fluorescence
KW - hyperbranched polymers
KW - porous organic polymers
KW - soluble
UR - https://www.scopus.com/pages/publications/85052453115
U2 - 10.1002/marc.201800441
DO - 10.1002/marc.201800441
M3 - 文章
C2 - 30091827
AN - SCOPUS:85052453115
SN - 1022-1336
VL - 39
JO - Macromolecular Rapid Communications
JF - Macromolecular Rapid Communications
IS - 21
M1 - 1800441
ER -