Enhanced electron transfer ability via coordination in
block copolymer/porphyrin/fullerene micelle
Wang, RL (Wang, Ruo-lin)[ 1 ] ; Qu, R (Qu, Rui)[ 1 ] ; Zhai, Y (Zhai, Yan)[ 1 ] ; Jing, C (Jing, Chen)[ 1 ] ; Li, A (Li, Ang)[ 1 ] ; An, YL (An, Ying-li)[ 1 ] ; Shi, LQ(Shi, Lin-qi)[ 1 ]
CHINESE
JOURNAL OF POLYMER SCIENCE, 2017, 35(11):
1328-1341
DOI: 10.1007/s10118-017-1973-y
WOS:000411900800002
Abstract
Inspired by
structures of antenna-reaction centers in photosynthesis, the complex micelle
was prepared from zinc tetra-phenyl porphyrin (ZnTPP), fullerene derivative
(PyC60) and poly(ethylene glycol)-block-poly(epsilon-caprolactone) (PEG-b-PCL).
The core-shell structure made the hydrophobic donor-acceptor system work in
aqueous. In micellar core, coordination interaction occurred between ZnTPP and
PyC60 molecules which ensured the enhanced energy migration from the donor to
the acceptor. The enhanced interaction between porphyrin and fullerene was
confirmed by absorption, steady-state fluorescence and transient fluorescence.
The generation of singlet oxygen and superoxide radical was detected by iodide
method and reduction of nitro blue tetrazolium, respectively, which confirmed
that electron transfer reaction in the complex micellar core occurred.
Moreover, the complex micelle exhibited effective electron transfer performance
in photodebromination of 2,3-dibromo-3-phenylpropionic acid. The complex
micellar structure endowed the donor-acceptor system with improved stability
under irradiation. This strategy could be helpful for designing new electron
transfer platform and artificial photosynthetic system.