Metal‐organic hybrid catalysts with highly tunable
Research gap analysis derived from 6 chemistry papers in our local library.
The gap
Abstract Metal‐organic hybrid catalysts with highly tunable single‐sites are promising for oxygen‐evolution reaction (OER), but molecular‐scale understanding of underlying reaction mechanisms still remain elusive on these bulk materials.
Evidence profile
Sourced from the future-work section and abstract and stated research gap and limitations section of the source papers, classified as general, drawn from work published between 2024 and 2026, spanning 6 journals. Those papers have been cited 188 times in total.
Research trend
Established — well-defined area with open sub-problems.
Supporting evidence — 7 representative gaps
- Recent Advancements in Catalysts for Petroleum Refining (2024) · Catalysts · cited 56× · doi
Exploration of new catalytic materials, such as metal-organic frameworks and multi-functional catalysts, - Integration of novel catalysts with existing refining technologies, - Development of catalysts that can improve selectivity and yield, - Investigation of advanced synthesis methods to optimize catalyst performance
generalfuture-work sectionKeywords: exploration new catalytic materials metal-organic frameworks multi-functional catalysts - Ligand‐Tuning Metallic Sites in Molecular Complexes for Efficient Water Oxidation (2024) · Angewandte Chemie International Edition · cited 71× · doi
Abstract Metal‐organic hybrid catalysts with highly tunable single‐sites are promising for oxygen‐evolution reaction (OER), but molecular‐scale understanding of underlying reaction mechanisms still remain elusive on these bulk materials.
generalabstractevidence 5/5Keywords: reaction abstract metal organic hybrid catalysts highly tunable single sites promising oxygen evolution molecular scale - Catalytic valorization of lignocellulosic biomass: progress, challenges, and emerging opportunities in metal-based catalysis (2026) · Frontiers in Catalysis · doi
Future research directions should focus on addressing critical challenges including catalyst deactivation, selectivity control, and scalability. Emerging opportunities in single-atom catalysis, bimetallic synergies, and integrated biorefinery concepts should be explored.
generalfuture-work sectionevidence 5/5Keywords: future research directions focus addressing critical challenges including - Engineering non-noble bifunctional catalysts for alkaline hydrogen and oxygen evolution (2026) · Discover Chemistry. · cited 1× · doi
Single-atom catalysts are a potential future research direction. Ternary chalcogenides and boron-based frameworks are areas for further study. The development of more efficient and practical alkaline electrolyzer technologies is a future research goal.
generalfuture-work sectionevidence 5/5Keywords: single-atom catalysts potential future research direction ternary chalcogenides - Smart Catalyst Design: Integrating Structure–Activity Relationships with Computational and Data-Driven Approaches (2026) · International Journal of Creative and Open Research in Engineering and Management · doi
The development of more efficient, selective, and durable catalytic systems is necessary to address energy security, climate change, and sustainability. The current state of catalyst design has limitations, such as the difficulty in obtaining high metallic loadings. The use of single-atom catalysts and metal-organic frameworks can improve catalytic activity.
generalstated research gapevidence 5/5Keywords: development efficient selective durable catalytic systems necessary address - Smart Catalyst Design: Integrating Structure–Activity Relationships with Computational and Data-Driven Approaches (2026) · International Journal of Creative and Open Research in Engineering and Management · doi
It is challenging to obtain high metallic loadings (> 5 wt%) while maintaining atomic dispersion. Single-atom catalysts exhibit dynamic behavior under reaction conditions. Standard DFT has shortcomings, such as underestimating band gaps and delocalizing localised d -and f-electrons.
generallimitations sectionevidence 5/5Keywords: challenging obtain high metallic loadings maintaining atomic dispersion - Modulation of the Second-Beyond Coordination Structure in Single-Atom Electrocatalysts for Confirmed Promotion of Ammonia Synthesis (2024) · Journal of the American Chemical Society · cited 60× · doi
Although microenvironments surrounding single-atom catalysts (SACs) have been widely demonstrated to have a remarkable effect on their catalytic performances, it remains unclear whether the local structure beyond the secondary coordination shells works as well or not.
generalabstractevidence 2/5Keywords: microenvironments surrounding single atom catalysts sacs widely remarkable effect catalytic performances remains unclear whether local
Questions about this gap
Explore this gap further
Run this gap as a query across open scholarly engines for the latest related literature.
Working on this gap? Review it with us.
Science AI Journal reviews manuscripts in one pass with 8 specialised AI agents calibrated on 69,000+ real peer reviews.
Tools for your next paper
Related gaps in Chemistry
- The complexity of metabolic pathways and enzymaticThe complexity of metabolic pathways and enzymatic mechanisms of LAB, - The influence of microbial interactions and environmental factors on…
- Due to the complex interactions between catalystDue to the complex interactions between catalyst components, the design of novel catalysts has long relied on trial-and-error, a costly and …
- ADMET and drug-likeness profiling are performedADMET and drug-likeness profiling are performed for pyrimidine, indole-thiadiazole, and sulfur heterocycles but not reported for sulfanilami…
- The development of new catalysts and catalytic processesThe development of new catalysts and catalytic processes. The application of green chemistry and catalysis to various industrial processes. …