TY - JOUR
T1 - Nanoporous Mn-based electrocatalysts through thermal conversion of cyano-bridged coordination polymers toward ultra-high efficiency hydrogen peroxide production
AU - Zakaria, Mohamed B.
AU - Li, Cuiling
AU - Pramanik, Malay
AU - Tsujimoto, Yoshihiro
AU - Hu, Ming
AU - Malgras, Victor
AU - Tominaka, Satoshi
AU - Yamauchi, Yusuke
N1 - Publisher Copyright:
© 2016 The Royal Society of Chemistry.
PY - 2016
Y1 - 2016
N2 - An oriented and controlled crystal growth of cyano-bridged coordination polymers is realized by a controlling agent (e.g., trisodium citrate dihydrate (TSCD)) as a reaction precursor. In the presence of TSCD, the reaction is slow as the complex appears to be more stable, leading to a preferentially oriented crystal growth. For instance, after mixing manganese acetate with TSCD, the formed Mn-citrate complex tends to release few Mn2+ ions steadily and slowly, which then react with the ligands at the initial stage of the reaction. Subsequently, the generated nuclei further grow from the interaction between the released Mn2+ and [Mn(CN)6]3-, [Co(CN)6]3-, or [Ru(CN)6]4- anions to form several types of cyano-bridged coordination polymers (abbreviated as MnCNMn, MnCNCo, or MnCNRu, respectively). After thermal treatment in air, the as-prepared coordination polymers can be decomposed into their corresponding nanoporous Mn-based oxides. Surprisingly, the electrochemical analysis reveals that the Mn-Ru oxide prepared from MnCNRu is a promising catalyst for the production of H2O2 by selectively catalyzing the oxygen reduction reaction (ORR) through an exact 2-electron pathway. Compared to previously reported materials, our electrocatalyst demonstrates an outstanding activity, a strict selectivity, and a long-term stability for the production of H2O2. The present catalyst design sheds new light on the production of H2O2 by a safe and sustainable way.
AB - An oriented and controlled crystal growth of cyano-bridged coordination polymers is realized by a controlling agent (e.g., trisodium citrate dihydrate (TSCD)) as a reaction precursor. In the presence of TSCD, the reaction is slow as the complex appears to be more stable, leading to a preferentially oriented crystal growth. For instance, after mixing manganese acetate with TSCD, the formed Mn-citrate complex tends to release few Mn2+ ions steadily and slowly, which then react with the ligands at the initial stage of the reaction. Subsequently, the generated nuclei further grow from the interaction between the released Mn2+ and [Mn(CN)6]3-, [Co(CN)6]3-, or [Ru(CN)6]4- anions to form several types of cyano-bridged coordination polymers (abbreviated as MnCNMn, MnCNCo, or MnCNRu, respectively). After thermal treatment in air, the as-prepared coordination polymers can be decomposed into their corresponding nanoporous Mn-based oxides. Surprisingly, the electrochemical analysis reveals that the Mn-Ru oxide prepared from MnCNRu is a promising catalyst for the production of H2O2 by selectively catalyzing the oxygen reduction reaction (ORR) through an exact 2-electron pathway. Compared to previously reported materials, our electrocatalyst demonstrates an outstanding activity, a strict selectivity, and a long-term stability for the production of H2O2. The present catalyst design sheds new light on the production of H2O2 by a safe and sustainable way.
UR - https://www.scopus.com/pages/publications/84973662259
U2 - 10.1039/c6ta01470d
DO - 10.1039/c6ta01470d
M3 - 文章
AN - SCOPUS:84973662259
SN - 2050-7488
VL - 4
SP - 9266
EP - 9274
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 23
ER -