4.8 Article

Optimized NiFe-Based Coordination Polymer Catalysts: Sulfur-Tuning and Operando Monitoring of Water Oxidation

Journal

ACS NANO
Volume -, Issue -, Pages -

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.2c06890

Keywords

electrocatalysis; mechanisms; operando X-ray absorption spectroscopy; coordination polymers; oxygen evolution reaction

Funding

  1. University of Zurich Research Priority Program Solar Light to Chemical Energy Conversion (URPP LightChEC)
  2. Swiss National Science Foundation [CRSII2_160801]
  3. Swiss National Science Foundation (SNF) [CRSII2_160801] Funding Source: Swiss National Science Foundation (SNF)

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In this study, a sulfur heteroatom tuning strategy was introduced to optimize the performance of active Ni and Fe centers in coordination polymer catalysts. The sulfur engineering of Ni/Fe-CPs was found to facilitate dioxygen formation by optimizing the local electronic structure of their active centers. The sulfur-doped Ni/Fe-CPs showed higher OER activity compared to sulfur-free NiFe-based electrocatalysts.
In-depth insights into the structure-activity relationships and complex reaction mechanisms of oxygen evolution reaction (OER) electrocatalysts are indispensable to efficiently generate clean hydrogen through water electrolysis. We introduce a convenient and effective sulfur heteroatom tuning strategy to optimize the performance of active Ni and Fe centers embedded into coordination polymer (CP) catalysts. Operando monitoring then provided the mechanistic understanding as to how exactly our facile sulfur engineering of Ni/Fe-CPs optimizes the local electronic structure of their active centers to facilitate dioxygen formation. The high OER activity of our optimized S-R-NiFe-CPs outperforms the most recent NiFe-based OER electrocatalysts. Specifically, we start from oxygen-deprived O-d-R-NiFe-CPs and transform them into highly active Ni/Fe-CPs with tailored sulfur coordination environments and anionic deficiencies. Our operando X-ray absorption spectroscopy analyses reveal that sulfur introduction into our designed S-R-NiFe-CPs facilitates the formation of crucial highly oxidized Ni4+ and Fe4+ species, which generate oxygen-bridged Ni-IV-O-Fe-IV moieties that act as the true OER active intermediates. The advantage of our sulfur-doping strategy for enhanced OER is evident from comparison with sulfur-free O-d-R-NiFe-CPs, where the formation of essential high-valent OER intermediates is hindered. Moreover, we propose a dual-site mechanism pathway, which is backed up with a combination of pH-dependent performance data and DFT calculations. Computational results support the benefits of sulfur modulation, where a lower energy barrier enables O-O bond formation atop the S-Ni-IV-O-Fe-IV-O moieties. Our convenient anionic tuning strategy facilitates the formation of active oxygen-bridged metal motifs and can thus promote the design of flexible and low-cost OER electrocatalysts.

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