HEIndividual fellowship2023–2025

SolarCar · Palladium anchored Halide Perovskites for Solar-driven Diphenyl Carbonate Synthesis

Horizon Europe — Marie Skłodowska-Curie Actions

Duration
2023-06-01 → 2025-05-31
EU contribution
€173,847
Participants
1
Scheme
HORIZON-TMA-MSCA-PF-EF

Lines connect the coordinator with its partners.

Results in brief

Palladium anchored Halide Perovskites for Solar-driven Diphenyl Carbonate Synthesis

As the world faces rising challenges from climate change and plastic pollution, science is searching for sustainable ways to produce everyday materials using renewable energy and environmentally friendly processes. This project responded to that challenge by developing a new solar-powered method to create diphenyl carbonate (DPC), a key building block in the production of polycarbonate plastics, commonly used in electronics, lenses, and medical devices. Traditionally, DPC is produced using toxic chemicals like phosgene, which poses health and environmental risks. This project instead explored an innovative and greener route: using carbon dioxide (CO2) and phenol, a common industrial feedstock, to produce DPC under solar light. By converting waste CO2 into valuable materials, the project aligned with Europe’s sustainability goals and circular economy strategies. The scientific goal was to design new photocatalytic materials that can perform two separate chemical reactions at once: reducing CO2 to carbon monoxide (CO*) and oxidizing phenol to phenoxy radicals (PhO•). These reactive intermediates are then coupled together to form DPC. In this project, we aimed at two main objectives: 1. Engineering halide perovskites (HPs) with tailored band structures and controlled surface defects to anchor palladium (Pd) clusters or single atoms, creating porous hybrid materials with enhanced sunlight absorption and photocatalytic activity. 2. Demonstrating solar-mediated formation of key intermediates, including phenoxy radicals (PhO•) and carbon monoxide (CO*) from phenol oxidation and CO2 reduction, enabling tandem diphenyl carbonate (DPC) synthesis. 3. Uncovering the reaction mechanism through advanced spectroscopic tools and control experiments, identifying intermediate species and charge-transfer pathways to provide insights into the photocatalytic transformation reactions. The innovation of this work lies not only in developing a cleaner, safer pathway for DPC production, but also in pioneering a new class of photocatalytic materials, single-atom catalyst (SAC) decorated halide perovskites (Figure 1). This unexplored combination has great potential in solar chemical synthesis and could be extended to other reactions. By bridging material science, green chemistry, and solar energy conversion, the project offers a blueprint for replacing fossil-fuel-based production processes with cleaner, sunlight-powered alternatives advancing both scientific understanding and sustainability goals.

Data: CORDIS, © European Union

Project objective

Global CO2 emission dominated by burning fossil fuels is resulting in serious societal and environmental issues. To reduce CO2 emission, it is ultimately needed to move away from the reliance on fossil fuels and develop new processes and technologies for CO2 capture and transformation to value-added chemical and products. This project aims to develop and validate an innovative concept for solar energy-driven diphenyl carbonate— essential monomer for polycarbonate—synthesis by coupling CO2 reduction and phenol oxidation half reactions over palladium single atom supported bismuth-based porous halide perovskite photocatalyst. The proposal consists of key scientific and technological targets and objectives; i) modulation of band structure and creation of defects sites on morphology-controlled halide perovskites for anchoring of palladium single atom sites, which will result in a new class of hybrid materials, ii) demonstration of the proof of concept of CO2 reduction and phenol oxidation half-reactions, and the combination of their intermediates to form diphenyl carbonate over hybrid photocatalyst, which is an untouched research territory and has great scientific and technological potentials, iii) exploration and gaining insights about reaction mechanism by using state-of-the-art spectroscopic methods and theoretical predictions. This high-risk/high-gain project is expected to have far-reaching scientific, economic, technological, and societal impacts.

Original text from CORDIS.

Participants

  • MAX PLANCK INSTITUT FUER KOHLENFORSCHUNG · Muelheim An Der RuhrCoordinatorGermany

Links

Data: CORDIS, © European Union