PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 1, 2026cScience2 citationsOpen Access

ZnO@Cryptomelane‐Type MnO 2 Heterostructures for High‐Efficiency Photocatalytic CO 2 Reduction: Synergistic Charge Transfer and Reaction Pathway Elucidation

View Full Paper
CMChangye MangSLSizhe LuoJLJun Luo

Key Points

  • The aim is to develop efficient photocatalysts for CO2 reduction to address energy demands and environmental issues.
  • Designed ZnO@cryptomelane-type MnO2 heterostructures via in situ growth strategy.
  • Optimized ZnO loading to achieve superior photocatalytic performance.
  • Conducted structural and mechanistic analyses to reveal charge transfer mechanisms.
  • Utilized X-ray photoelectron spectroscopy and temperature-programmed desorption for characterization.
  • Performed in situ Diffuse Reflectance Infrared Fourier Transform Spectroscopy to elucidate reaction pathways.
  • Achieved a CO production rate of 88.53 μmol·g−1·h−1 with 96.8% selectivity.
  • 0.3-ZnO@Cry demonstrated a 3.9- and 19.5-fold higher performance than pristine Cry and ZnO, respectively.
  • Confirmed the highest Mn 3+/Mn 4+ ratio for enhanced CO2 adsorption and activation.
  • Accelerated electron transfer and suppressed recombination rates were validated through transient photocurrent measurements.
  • Catalyst retained over 95% activity after five cycles, indicating strong stability.

Abstract

ABSTRACT The development of efficient photocatalysts for CO 2 reduction is pivotal to meet global energy demands and mitigate environmental degradation. In this study, we designed ZnO@cryptomelane‐type MnO 2 (ZnO@Cry) heterostructures via a facile in situ growth strategy, achieving remarkable visible‐light‐driven CO 2 ‐to‐CO conversion. The 0.3‐ZnO@Cry composite sample obtained by optimizing the ZnO loading demonstrated superior photocatalytic performance, achieving a CO production rate of 88.53 μmol·g −1 ·h −1 (3.9‐ and 19.5‐fold higher than pristine Cry and ZnO, respectively) with 96.8% selectivity and minor CH 4 formation (2.68 μmol·g −1 ·h −1 ). Structural and mechanistic analyses revealed that the integration of ZnO nanosheets into Cry nanowhiskers established an interfacial heterojunction, enhancing visible light absorption and charge separation efficiency. X‐ray photoelectron spectroscopy and CO 2 temperature‐programmed‐desorption studies confirmed that 0.3‐ZnO@Cry had the highest Mn 3+ /Mn 4+ ratio, which synergistically promoted CO 2 adsorption/activation and intermediate stabilization. Transient photocurrent and electrochemical impedance spectroscopy measurements further validated the accelerated electron transfer and suppressed recombination kinetics in the heterostructure. In situ Diffuse Reflectance Infrared Fourier Transform Spectroscopy (DRIFTS) elucidated the reaction pathway, wherein CO 2 was sequentially reduced to and intermediates, ultimately desorbing CO, whereas minor CH 4 formation proceeded via hydrogenation. Remarkably, the catalyst retained more than 95% of its activity over five cycles, indicating robust stability. This study highlights the critical roles of heterojunction engineering and defect modulation in advancing solar‐driven CO 2 valorization, thereby offering a sustainable blueprint for carbon‐neutral technologies.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Mang et al. (2026) studied this question.

synapsesocial.com/papers/69cd7b575652765b073a93aehttps://doi.org/10.1002/csc3.70012
Ask AI
Helpful
Bookmark
Share
View Full Paper