Investigation of Electron Transfer Properties on Silicalite-1 Zeolite for Potential Electrocatalytic Applications

Исследование свойств электронного переноса на цеолите Silicalite-1 для потенциальных электрокаталитических применений
Yingying Jin, Xichen Yin, Guanghua Yu, Qiming Sun, Jiong Wang
2024-10-30

H2O2 selectivitySilicalite-1 (S-1) zeoliteflow cell yield (9.2 mol g_cat^-1 h^-1)inner-sphere electron transfer (ISET)lithium-ion-incorporated S-1 zeolitemicroporous channelsouter-sphere electron transfer (OSET)oxygen reduction electrocatalysis
To develop high-performance electrocatalysts is critical to sustainable conversion and storage of renewable energy. Silicalite-1 (S-1) zeolite is considered promising for constructing electrocatalysts featuring uniform and precise porosity and a stable structural skeleton even at extreme potentials. However, its electrochemical properties remain poorly understood, particularly regarding the roles of internal pore channels. Herein, inner- and outer-sphere electron transfer (ISET/OSET) routes on the S-1 zeolite were investigated by classical redox probes. The results for the first time revealed that the ISET kinetics inside the pores of S-1 zeolite is more rapid than that on external surfaces, optimized by microporous scale channels and terminated hydroxyl groups. Conversely, the kinetics of the OSET did not closely depend on the porosity and surface properties of the S-1 zeolite. These electrochemical insights further initiated a lithium-ion-incorporated S-1 zeolite with rapid ISET kinetics for electrocatalysis of oxygen reduction. It demonstrated a high performance of 85% selectivity for H2O2 production in a neutral solution and a yield of 9.2 mol gcat–1 h–1 when configured in a flow cell.
1
Faster ISET kinetics are attributed to microporous-scale channels and terminated hydroxyl groups within S-1 pores.
2
Inner-sphere electron transfer (ISET) kinetics inside Silicalite-1 (S-1) zeolite pores are faster than on its external surfaces.
3
Lithium-ion-incorporated S-1 zeolite exhibits rapid ISET kinetics and functions as an electrocatalyst for oxygen reduction.
4
Outer-sphere electron transfer (OSET) kinetics are largely independent of S-1 zeolite porosity and surface properties.
5
The Li-incorporated S-1 electrocatalyst achieves 85% selectivity for H2O2 production in neutral solution and a yield of 9.2 mol g_cat^-1 h^-1 in a flow cell.

Silicalite-1 (S-1) zeolite (including its internal pore channels and Li-incorporated variant) as the material under study

Electron transfer properties and kinetics on S-1 zeolite—specifically inner-sphere (ISET) versus outer-sphere (OSET) electron transfer in pore channels vs external surfaces—and their impact on electrocatalytic performance (H2O2 selectivity and production yield) for oxygen reduction

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2024-10-30
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Yingying Jin
Xichen Yin
Guanghua Yu
Qiming Sun
Jiong Wang
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