4.8 Article

Boosting the Electrocatalytic Conversion of Nitrogen to Ammonia on Metal-Phthalocyanine-Based Two-Dimensional Conjugated Covalent Organic Frameworks

Journal

JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume 143, Issue 47, Pages 19992-20000

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/jacs.1c11158

Keywords

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Funding

  1. EU [881603]
  2. ERC [852909]
  3. Coordination Networks: Building Blocks for Functional Systems [SPP 1928, CRC 1415, 417590517]
  4. German Science Council and Center for Advancing Electronics Dresden (cfaed)
  5. Taishan Scholars Program of Shandong Province [tsqn201909047]
  6. Alexander von Humboldt Foundation
  7. Cluster of Excellence UniSysCat [EXC 2008/1-390540038]
  8. European Research Council (ERC) [852909] Funding Source: European Research Council (ERC)

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By synthesizing metal-heteroatom-doped two-dimensional conjugated covalent organic frameworks (2D c-COFs), enhanced activity and selectivity of electrocatalytic NRR to ammonia have been achieved, making them among the best NRR electrocatalysts.
The electrochemical N-2 reduction reaction (NRR) under ambient conditions is attractive in replacing the current Haber-Bosch process toward sustainable ammonia production. Metal-heteroatom-doped carbon-rich materials have emerged as the most promising NRR electrocatalysts. However, simultaneously boosting their NRR activity and selectivity remains a grand challenge, while the principle for precisely tailoring the active sites has been elusive. Herein, we report the first case of crystalline two-dimensional conjugated covalent organic frameworks (2D c-COFs) incorporated with M-N-4-C centers as novel, defined, and effective catalysts, achieving simultaneously enhanced activity and selectivity of electrocatalytic NRR to ammonia. Such 2D c-COFs are synthesized based on metal-phthalocyanine (M = Fe, Co, Ni, Mn, Zn, and Cu) and pyrene units bonded by pyrazine linkages. Significantly, the 2D c-COFs with Fe-N-4-C center exhibit higher ammonia yield rate (33.6 mu g h(-1) mgcat(-1)) and Faradaic efficiency (FE, 31.9%) at -0.1 V vs reversible hydrogen electrode than those with other M-N4C centers, making them among the best NRR electrocatalysts (yield rate >30 mu g h(-1) mgcat-1 and FE > 30%). In situ X-ray absorption spectroscopy, Raman spectroelectrochemistry, and theoretical calculations unveil that Fe-N-4-C centers act as catalytic sites. They show a unique electronic structure with localized electronic states at Fermi level, allowing for stronger interaction with N-2 and thus faster N-2 activation and NRR kinetics than other M-N-4-C centers. Our work opens the possibility of developing metal-nitrogendoped carbon-rich 2D c-COFs as superior NRR electrocatalyst and provides an atomic understanding of the NRR process on M-N-x-C based electrocatalysts for designing high-performance NRR catalysts.

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