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Scientists finally see how nature moves energy so efficiently

Scientists finally see how nature moves energy so efficiently

sciencedaily.com 06.10.2026 09:49 6 views
Researchers have captured key steps in a chemical reaction that helps nature transfer energy with remarkable efficiency. Ultrafast X-rays revealed how changes involving electrons and protons are closely linked to the rea

Some of the most important reactions in nature depend on positively and negatively charged particles moving in a coordinated way. These reactions are essential to processes such as photosynthesis, catalysis and biological energy conversion, but they happen so quickly that they are extremely difficult to observe. A team led by the Department of Energy's Pacific Northwest National Laboratory, working with researchers at SLAC National Accelerator Laboratory and several universities, has now captured snapshots of these events after they are triggered by light striking a molecule.

The findings, published in Nature Communications, could deepen scientists' understanding of these reactions and eventually contribute to improved flow batteries, fuel cells and catalysts. At the center of the study is the coordinated motion of positively charged protons and negatively charged electrons. This type of energy transfer is among the most efficient known in nature.

Plants use related processes to capture energy from sunlight and convert it into stored chemical energy. When electrons and protons move in a coordinated way, molecules can avoid intermediate steps that would otherwise require more energy. That can make a reaction both faster and much more efficient.

The researchers investigated how changes in a molecule's electronic structure, the arrival of a proton and shifts in the surrounding water environment are connected during this process. Capturing a Reaction at the Molecular Level Scientists have studied this interaction for decades, but no previous experiment had captured the process in a single study with both local and structural sensitivity. Advanced X-ray techniques at the Linac Coherent Light Source at SLAC, combined with state-of-the-art quantum chemistry calculations and molecular dynamics simulations, provided an unusually detailed view.

PNNL experimental chemical physicist Elisa Biasin, former PNNL scientist Abdullah Kahraman and PNNL theorists Niranjan (Niri) Govind and Amity Andersen worked with collaborators to study a light-driven proton-coupled electron transfer reaction, or PCET. The team combined ultrafast X-ray spectroscopy, X-ray scattering and advanced simulations to capture important stages of the reaction. For the first time with structural sensitivity, the researchers were able to show how a molecule's electronic structure changes at specific locations as it gains a proton, while the surrounding water environment reorganizes at the same time.

"We have captured for the first time how electronic changes associated with proton transfer are coupled to reorganization of the surrounding solvent," said Biasin. "This gives us a new way to understand how molecules and their environments evolve together during fundamental chemical transformations." Why Proton-Coupled Electron Transfer Matters PCET plays an important role throughout nature. Plants rely on it during photosynthesis to harvest light, while animals use related processes to efficiently convert food into energy.

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