98%
921
2 minutes
20
Challenges remain in the development of novel multifunctional electrocatalysts and their industrial operation on low-electricity pair-electrocatalysis platforms for the carbon cycle. Herein, an enzyme-inspired single-molecular heterojunction electrocatalyst ((NH ) -NiPc/CNTs) with specific atomic nickel centers and amino-rich local microenvironments for industrial-level electrochemical CO reduction reaction (eCO RR) and further energy-saving integrated CO electrolysis is designed and developed. (NH ) -NiPc/CNTs exhibit unprecedented catalytic performance with industry-compatible current densities, ≈100% Faradaic efficiency and remarkable stability for CO -to-CO conversion, outperforming most reported catalysts. In addition to the enhanced CO capture by chemisorption, the sturdy deuterium kinetic isotope effect and proton inventory studies sufficiently reveal that such distinctive local microenvironments provide an effective proton ferry effect for improving local alkalinity and proton transfer and creating local interactions to stabilize the intermediate, ultimately enabling the high-efficiency operation of eCO RR. Further, by using (NH ) -NiPc/CNTs as a bifunctional electrocatalyst in a flow cell, a low-electricity overall CO electrolysis system coupling cathodic eCO RR with anodic oxidation reaction is developed to achieve concurrent feed gas production and sulfur recovery, simultaneously decreasing the energy input. This work paves the new way in exploring molecular electrocatalysts and electrolysis systems with techno-economic feasibility.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1002/adma.202202830 | DOI Listing |
Chem Commun (Camb)
September 2025
International Collaboration Laboratory of 2D Materials for Optoelectronics Science and Technology of Ministry of Education, Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, China.
Heterojunctions of carbon nanoribbons (CNRs) hold great promise for electronic device applications due to their enhanced carrier separation efficiency induced by built-in electric fields at the junctions. Moreover, their electronic, magnetic, and optical properties can be finely tuned by precisely controlling the width and edge structure. However, the fabrication of CNR heterojunctions typically requires multiple distinct precursor molecules, demanding complex chemical design and synthesis.
View Article and Find Full Text PDFAdv Mater
August 2022
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, 350002, P. R. China.
Challenges remain in the development of novel multifunctional electrocatalysts and their industrial operation on low-electricity pair-electrocatalysis platforms for the carbon cycle. Herein, an enzyme-inspired single-molecular heterojunction electrocatalyst ((NH ) -NiPc/CNTs) with specific atomic nickel centers and amino-rich local microenvironments for industrial-level electrochemical CO reduction reaction (eCO RR) and further energy-saving integrated CO electrolysis is designed and developed. (NH ) -NiPc/CNTs exhibit unprecedented catalytic performance with industry-compatible current densities, ≈100% Faradaic efficiency and remarkable stability for CO -to-CO conversion, outperforming most reported catalysts.
View Article and Find Full Text PDFSci Adv
May 2020
State Key Laboratory of Physical Chemistry of Solid Surfaces, iChEM, College of Chemistry and Chemical Engineering & Pen-Tung Sah Institute of Micro-Nano Science and Technology, Xiamen University, Xiamen 361005, China.
Two-dimensional van der Waals heterojunctions (2D-vdWHs) stacked from atomically thick 2D materials are predicted to be a diverse class of electronic materials with unique electronic properties. These properties can be further tuned by sandwiching monolayers of planar organic molecules between 2D materials to form molecular 2D-vdWHs (M-2D-vdWHs), in which electricity flows in a cross-plane way from one 2D layer to the other via a single molecular layer. Using a newly developed cross-plane break junction technique, combined with density functional theory calculations, we show that M-2D-vdWHs can be created and that cross-plane charge transport can be tuned by incorporating guest molecules.
View Article and Find Full Text PDFJ Phys Chem Lett
July 2019
School of Physics , Southeast University, Nanjing 211189 , P.R. China.
Surface-enhanced Raman spectroscopy (SERS), a sensitive analytical technique that has single molecular sensitivity, has attracted continuous attention for both application and academic research. Semiconductor-based substrates with SERS activity present more practical applications, ranging from surface science to biological detection because of their lower cost and better biocompatibility compared with noble metals. However, the SERS performance of most semiconductor-based substrates is not significant.
View Article and Find Full Text PDFNat Nanotechnol
November 2017
Department of Physics, University of California at Berkeley, Berkeley, California 94720, USA.
The rational bottom-up synthesis of atomically defined graphene nanoribbon (GNR) heterojunctions represents an enabling technology for the design of nanoscale electronic devices. Synthetic strategies used thus far have relied on the random copolymerization of two electronically distinct molecular precursors to yield GNR heterojunctions. Here we report the fabrication and electronic characterization of atomically precise GNR heterojunctions prepared through late-stage functionalization of chevron GNRs obtained from a single precursor.
View Article and Find Full Text PDF