Electrogenerated Radicals Boosting Chemiluminescence of CdSe/CdS/ZnS Quantum Dots
Ziqi Lian1, Hui Sun1, Zhiyuan Cao1
1Department of Chemistry, Zhejiang Key Laboratory of Excited-State Energy Conversion and Energy Storage, Zhejiang University, Hangzhou, China.
Abstract:
We report in this work highly efficient, temporally stable, and multicolor chemiluminescence of CdSe/CdS/ZnS quantum dots (QDs) boosted by radicals that are in situ electrogenerated near the electrode surface. Typically, electrochemical oxidation of tri-n-propylamine (TPrA), a tertiary amine, generates radical cation (TPrA•+) and radical (TPrA•). Then, TPrA• and TPrA•+ sequentially inject an electron and a hole to the valence and conduction bands of a QD to populate the excited state (QD*). In this pathway, a negatively charged QD (QD-) is formed as the key intermediate, instead of fragile positively charged QD+, thus producing highly stable and efficient luminescence. Moreover, this pathway is also identical to the so-called low-oxidation-potential electrochemiluminescence route of the gold standard luminophore, tris(2,2'-bipyridyl)ruthenium (Ru(bpy)3 2+), and therefore fully fit for microbead-based bioassays. Considering their high emission efficiency (∼5 times higher than Ru(bpy)3 2+ under same condition), narrow emission bands and tunable wavelengths, these QDs hold great promise as luminophores in ultrasensitive and multiplexed microbead-based bioassays.
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