ACS Applied Materials & Interfaces · 2021 · 47 citations · 39 references
The authors built a selective photoelectrochemical biosensor for Hg²⁺ detection by sensitizing CdS with zinc phthalocyanine and employing alginate as both carrier and binder. CdS was electrodeposited onto ITO to generate a photocurrent, then ZnPc was incorporated into amphiphilic alginate micelles and coated onto the CdS film; a thymine‑rich DNA probe was immobilized on the surface, and Hg²⁺ binding to thymine formed a T–Hg²⁺–T complex that reduced photocurrent through steric hindrance. The sensor exhibited a photocurrent increase from ZnPc sensitization, a linear response from 10 pM to 1.0 µM, a detection limit of 5.7 pM, and demonstrated potential for detecting other biomolecules.
A simple and selective photoelectrochemical (PEC) biosensor was constructed for Hg2+ detection based on zinc phthalocyanine (ZnPc) dye-sensitized CdS using alginate not only as a carrier but also as a binder. First, CdS as a photoactive material was in situ modified on the electrode surface using a rapid and simple electrodeposition to obtain an initial photocurrent signal. Second, ZnPc was loaded in the amphiphilic alginate micelle and then was coated onto the CdS film surface via alginate as the binder. The photocurrent was subsequently enhanced due to the favorable dye sensitization effect of ZnPc to CdS. Finally, the thymine-rich probe DNA was immobilized on the modified ITO surface via coupling reaction between the carbonyl groups of the amphiphilic polymer and the amino groups of the probe DNA. In the presence of Hg2+, the thymine–Hg2+–thymine (T–Hg2+–T) structure was formed due to the specific bond of Hg2+ with thymine, resulting in the decrease of photocurrent due to the increase of steric hindrance on the modified electrode surface. The proposed PEC biosensor for Hg2+ detection possessed a wide linear range from 10 pM to 1.0 μM with a detection limit of 5.7 pM. This biosensor provides a promising platform for detecting other biomolecules of interest.
39
A Major Constituent of Brown Algae for Use in High-Capacity Li-Ion Batteries
Igor Kovalenko, Bogdan Zdyrko, Alexandre Magasinski et al. · Science · 2011 · 1.8K citations · Full text
Min Liu, Xia Song, Yuting Wen et al. · ACS Applied Materials & Interfaces · 2017 · 238 citations