2021•ACS Applied Energy MaterialsRequires access

ZnCl2 as a “Nitrogen Bank” to Inhibit Nitrogen Loss during the Thermal Conversion of Nitrogen-Containing Carbon Precursors to Nitrogen-Doped Carbon

Yuke Su, Suqin Liu, Guanying Ye, Weiwei Zhu, Kuangmin Zhao, Rongjiao Huang, Zhen He

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Abstract

A universal synthesis strategy for inhibiting the nitrogen loss during the thermal conversion of N-containing carbon precursors to nitrogen-doped carbon is developed. ZnCl 2, as a sacrificial additive in the pyrolysis, acts like a “nitrogen bank” (“N-bank”) to accommodate the N-containing intermediates from the decomposed precursors and redopes the nitrogen back into the final carbon materials. The nitrogen-doped carbon synthesized by this N-bank synthesis strategy has a significantly elevated nitrogen content and shows an excellent catalytic performance toward the oxygen reduction reaction ( E 1/2 = 0.89 V RHE ).

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A universal synthesis strategy for inhibiting the nitrogen loss during the thermal conversion of N-containing carbon precursors to nitrogen-doped carbon is developed. ZnCl 2, as a sacrificial additive in the pyrolysis, acts like a “nitrogen bank” (“N-bank”) to accommodate the N-containing intermediates from the decomposed precursors and redopes the nitrogen back into the final carbon materials. The nitrogen-doped carbon synthesized by this N-bank synthesis strategy has a significantly elevated nitrogen content and shows an excellent catalytic performance toward the oxygen reduction reaction ( E 1/2 = 0.89 V RHE ).

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Available abstract

A universal synthesis strategy for inhibiting the nitrogen loss during the thermal conversion of N-containing carbon precursors to nitrogen-doped carbon is developed. ZnCl 2, as a sacrificial additive in the pyrolysis, acts like a “nitrogen bank” (“N-bank”) to accommodate the N-containing intermediates from the decomposed precursors and redopes the nitrogen back into the final carbon materials. The nitrogen-doped carbon synthesized by this N-bank synthesis strategy has a significantly elevated nitrogen content and shows an excellent catalytic performance toward the oxygen reduction reaction ( E 1/2 = 0.89 V RHE ).

Key concepts: Nitrogen, Carbon fibers, Chemistry, Inorganic chemistry, Materials science, Organic chemistry, Composite number, Composite material

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