Monday, February 16, 2026

 

Explaining next-generation solar cells



ISTA physicists explain the exceptional energy-harvesting efficiency of perovskites




Institute of Science and Technology Austria

ISTA physicists Alpichshev and Rak 

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ISTA physicists explain the exceptional energy-harvesting efficiency of perovskites. Left to right: Assistant Professor Zhanybek Alpichshev and postdoc Dmytro Rak.

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Credit: © ISTA





Despite being riddled with impurities and defects, solution-processed lead-halide perovskites are surprisingly efficient at converting solar energy into electricity. Their efficiency is approaching that of silicon-based solar cells, the industry standard. In a new study published in Nature Communications, physicists at the Institute of Science and Technology Austria (ISTA) present a comprehensive explanation of the mechanism behind perovskite efficiency that has long perplexed researchers.

How can a device assembled with minimal sophistication rival state-of-the-art technology perfected over decades? Over the past 15 years, materials research has witnessed the rise of lead-halide-based perovskites as prospective next-generation solar-cell materials. The puzzle is that despite similar performance, perovskite solar cells are fabricated using inexpensive solution-based techniques, while the industry-standard silicon cells require ultra-pure single-crystal wafers.

Now, postdoc Dmytro Rak and assistant professor Zhanybek Alpichshev at the Institute of Science and Technology Austria (ISTA) have uncovered the mechanism behind the unique photovoltaic properties of perovskites. Their key finding is that while silicon-based technology relies on the absence of impurities, the opposite is true in perovskites: It is the natural network of structural defects in these materials that enables the long-range charge transport necessary for efficient photovoltaic energy harvesting. “Our work provides the first physical explanation of these materials while accounting for most–if not all–of their documented properties,” says Rak. The results could accelerate the transition of next-generation perovskite-based solar cells from the lab to real-world applications.

Perovskites: From obscurity to the limelight

“Lead-halide perovskites” is an umbrella term for a class of compounds discovered in the 1970s. They were named for their superficial structural similarity to perovskites, a broad family of oxide compounds that play a prominent role in materials science. However, apart from their curious ability to form stable hybrid organic–inorganic crystalline structures, lead-halide perovskites did not initially attract broad interest. After standard characterization, they were catalogued and largely forgotten.

However, in the early 2010s, researchers realized that these materials exhibit exceptional photovoltaic performance. Perovskites also proved to be excellent materials for LEDs as well as X-ray detection and imaging. “In addition, these materials exhibit astounding quantum properties, such as quantum coherence at room temperature,” explains Alpichshev, whose group at ISTA investigates complex condensed matter physics phenomena in complex materials.

Fundamentally different solar cell technologies

An efficient solar cell must absorb incident light and convert it effectively into charges—a negatively charged electron and a positively charged “hole.” These charges must then be collected at the solar cell electrodes to produce usable current. This is where it becomes challenging: charges must travel hundreds of microns—equivalent to hundreds of kilometers on a human scale—without getting trapped along the way.

In silicon-based technology, this problem is solved by making the solar-harvesting medium almost free of defects that could trap charges before they reach the collection electrodes. What is unusual about perovskite devices is that, being solution-grown, they are filled with defects. How can charges in such an environment travel long distances to be extracted as useful current? Moreover, why do they even persist long enough to do so?

From hypothesis to an image: Silver ‘angiography’

There is solid evidence that once electrons and holes in perovskites form a bound state—an exciton—they recombine very quickly. In light of this, the observation that electrons and holes remain separated for extended periods inside the materials becomes even more puzzling. To rationalize this apparent paradox, the ISTA researchers conjectured that unaccounted-for internal forces within perovskites must rip the nascent electron-hole pairs apart and prevent them from recombining.

To test this hypothesis, the team introduced electrons and holes deep inside the bulk of a perovskite sample using nonlinear optical methods. This allowed them to detect a finite current flowing in the exact same direction in the material each time a new portion of electrons and holes was introduced—even in the absence of any applied voltage. “This observation clearly indicated that even deep inside single crystals of unmodified, as-grown perovskites, there are internal forces that separate opposite charges,” says Alpichshev.

However, previous characterizations of perovskites had determined that such behavior is incompatible with their intrinsic crystal structure. To resolve this contradiction, the ISTA researchers further proposed that charge separation does not occur uniformly across the sample, but is instead localized at so-called “domain walls”—sites of modified structure that can form microscopic networks spanning the entire sample.

But how could this conjecture be confirmed? How can such a domain-wall network be visualized deep inside the bulk, given that most local probes are sensitive only to the surface, where properties can differ significantly?

To overcome this challenge, Rak drew on his training as a chemist. Noting that perovskites are also good ionic conductors, he asked whether introducing some “marker” ions could be used to highlight domain walls non-destructively. To find out, he developed a new electrochemical staining technique to visualize the material’s domain-wall structure: he made silver ions diffuse into the bulk of the perovskite crystal, where they would preferentially accumulate at domain walls. The ions were then electrochemically transformed into metallic silver, allowing scientists to directly visualize the network running through the entire depth of the materials under a microscope. “This qualitative technique, invented and implemented at ISTA, is much like angiography in living tissues—except that we are examining the micro-structure of a crystal,” says Alpichshev.

Highways for electrons

According to Rak, realizing that a natural network of charge-separating domain walls densely spans the entire bulk of perovskites was a game-changer. As he explains, “If an electron-hole pair is created near a domain wall, the local electric field pulls the electron and the hole apart, placing them on opposite sides of the wall. Unable to recombine immediately, they can drift along the domain walls for what seems like eons on a charge carrier’s timescale and travel long distances.” Thus, the team demonstrated the existence of what they call “highways for charge carriers” inside perovskites. These explain the remarkable charge-transport properties that make perovskites so effective for energy harvesting.

The authors emphasize that the present work provides the first comprehensive and coherent physical explanation of perovskites. “With this comprehensive picture, we are finally able to reconcile many previously conflicting observations about lead-halide perovskites, resolving a long-standing debate about the source of their superior energy-harvesting efficiency,” says Rak.

To date, research has mostly focused on tuning the chemical composition of perovskites, with limited success. Now, the ISTA team’s findings could help researchers engineer perovskites to boost their efficiency without compromising their low-cost production process—heralding the next generation of solar cells.

 

 Environmental, Social, and Governance (ESG) 

Korea University, Stanford University, and IESGA launch Water Sustainability Index to combat ESG greenwashing



Researchers introduce a transparent, quantitative index to improve accountability in corporate water use reporting




Cactus Communications

Prof. Yong Sik Ok and Global ESG Leaders Unveil Science-Based Water Sustainability Metrics 

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Prof. Jay Hyuk Rhee, Prof. William Mitch, Mr. Jamil Ahmad of UNEP, and Prof. Yong Sik Ok at the 6th Global Conference on ESG Management and Sustainability (Korea University, November 28–30, 2023).

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Credit: International ESG Association





As corporate commitments to environmental, social, and governance (ESG) goals reach an all-time high, a persistent blind spot remains: water. Long emphasized by Professor Yong Sik Ok of Korea University, who serves as President of the International ESG Association, water stewardship has lagged behind carbon emissions, which are now tracked with near-surgical precision. In contrast, corporate water management is often confined to vague qualitative disclosures and limited metrics.

To address this imbalance, a research team led by Prof. William Mitch of Stanford University and Prof. Ok of Korea University, in collaboration with Prof. Jay Hyuk Rhee of the Korea University Business School and the International ESG Association, has introduced a new framework to curb greenwashing in ESG reporting. Published in Nature Water on February 10, 2026, the study presents the Water Sustainability Index (WSI), a transparent, quantitative metric designed to strengthen corporate water accountability worldwide.

Prof. Mitch and Prof. Ok explained that the index shifts ESG water reporting from broad narratives to measurable and comparable outcomes. The metric evaluates corporate water withdrawals, consumption, discharge quality, and reuse while accounting for local water scarcity, thereby helping to guide investments aligned with the United Nations (UN) Sustainable Development Goal (SDG) 6.

The Transparency Gap

The impetus for the WSI emerged from a stark data disparity identified by the research team through an analysis of the London Stock Exchange Group database. While 14% of major companies reported greenhouse gas emissions, only 9% disclosed total water withdrawals, and just 1% reported recycled water use. “Water is fundamentally different from carbon,” Prof. Ok said. “While carbon is a global issue, water is intensely local, and ESG metrics must reflect that reality.”

Prof. Mitch and Prof. Ok emphasized that withdrawing a million gallons from a water-rich region is not equivalent to withdrawing the same amount from a drought-prone basin. Existing ESG metrics often fail to capture this nuance, relying on non-uniform and opaque algorithms that vary across reporting entities. This lack of transparency creates opportunities for inconsistent assessments and unintentional “greenwashing.”

A Weighted Approach to Scarcity

To overcome these limitations, they designed the WSI to move beyond simple volume tracking. The index calculates a score based on source water type, watershed-level water stress, wastewater discharge quality, total consumption, and the extent of water reuse. Prof. Mitch noted that this multidimensional framework provides a more accurate assessment of corporate water impacts.

"A critical feature of the index is the use of weighting factors," Prof. Ok explained. "Higher weights are applied to operations in stressed watersheds, defined as regions where withdrawals exceed 40% of available freshwater, as well as to groundwater use, which is more difficult to replenish than surface water." This approach penalizes unsustainable practices while incentivizing investments in efficiency and alternative water sources.

From Negative to Positive: The Power of Reuse

To demonstrate the WSI’s effectiveness, the research team evaluated seven theoretical scenarios. A baseline facility extracting groundwater from a stressed area and discharging low-quality wastewater received a score of 1.17, highlighting significant sustainability risks. Relocating the facility to an unstressed area raised the score modestly, but Prof. Ok noted that geography alone is not a long-term solution.

The most dramatic improvements came from technological interventions. When internal process-water reuse was implemented, the score increased to 1.98. Combining reuse with water quality upgrades and optimized siting yielded a maximum score of 3.0. “The quantitative nature of the WSI allows companies to identify cost-effective pathways to improve water sustainability,” Prof. Mitch said. “It enables scenario testing before capital is committed.”

Setting a New Global Standard

Prof. Mitch and Prof. Ok envision the WSI as a bridge between complex scientific frameworks, such as the ISO 14046 Water Footprint, and the practical demands of voluntary ESG reporting. By providing a single, reproducible score, the index aims to reduce discrepancies where the same company might receive an “A” rating from one provider and a “D” from another.

As global water stress intensifies—with 25% of the world’s population already living in extremely high-stress watersheds—Prof. Rhee emphasizes that transparent and quantitative metrics are essential. The researchers conclude that widespread adoption of the WSI could facilitate cost-effective corporate investments and help the global community progress toward UN SDG 6 for clean water and sanitation while reducing ESG “greenwashing.”

 

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Reference       
DOI: 10.1038/s44221-025-00575-9

 

About the International ESG Association
Founded on May 4, 2021, by Korea University Professors Rhee Jay Hyuk and Ok Yong Sik, the International ESG Association (IESGA) is South Korea’s first global academic network dedicated to advancing corporate sustainability. As of June 2022, IESGA has connected over 400 institutions across 48 countries to establish a foundation for improving collective intelligence about the present and future of ESG management. Its mission focuses on creating and sharing cutting-edge knowledge, establishing global ESG criteria, hosting academic seminars, and providing specialized consultancy and educational programs. A landmark achievement includes co-hosting South Korea’s first Nature conference in 2021 with LG Energy Solutions, which engaged over 2,000 participants from 97 nations.

More information is available at: https://iesga.org/

HOLLOW EARTH

Antarctica sits above Earth’s strongest “gravity hole.” Now we know how it got that way





University of Florida





Gravity feels reliable — stable and consistent enough to count on. But reality is far stranger than our intuition.

In truth, the strength of gravity varies over the Earth’s surface. And it is weakest beneath the frozen continent of Antarctica  after accounting for Earth’s rotation

A new study reveals how achingly slow rock movements deep under the Earth’s surface over tens of millions of years led to today’s Antarctic gravity hole. The study highlights that the timing of changes in the Antarctic gravity low overlaps with major changes in Antarctica’s climate, and future research could reveal how the shifting gravity might have encouraged the growth of the frozen continent’s climate-defining ice sheets.

“If we can better understand how Earth’s interior shapes gravity and sea levels, we gain insight into factors that may matter for the growth and stability of large ice sheets,” said Alessandro Forte, Ph.D., a professor of geophysics at the University of Florida and co-author of the new study recreating the Antarctic gravity hole’s past.

Caused by different densities of rock far beneath the Earth’s surface, these variations in gravity are small in absolute terms. But they can have particularly large effects on the oceans. Where gravity is weaker, the ocean surface can sit slightly lower relative to Earth’s center because water flows away toward areas of stronger gravity. Due to its gravity hole, the sea-surface height around Antarctica is measurably lower than it would otherwise be.

In the study, published recently in Scientific Reports, Forte and Petar GliÅ¡ović, Ph.D., of the Paris Institute of Earth Physics, mapped the Antarctic gravity hole and revealed how it developed over millions of years. They relied on an Earth-spanning scientific project that combined global earthquake recordings with physics-based modeling to reconstruct the three-dimensional structure inside Earth.

“Imagine doing a CT scan of the whole Earth, but we don’t have X-rays like we do in a medical office. We have earthquakes. Earthquake waves provide the ‘light’ that illuminates the interior of the planet,” Forte said.

Accounting for all the rocks their earthquake waves could illuminate within Earth and physics-based modeling to predict the gravity pattern, Forte and Glišović reconstructed the gravitational map of the entire planet. The reconstructed map closely matched the gold-standard gravitational data captured by satellites, supporting the realism of their underlying models.

Then came the hard part: turning the clock backward to see how Antarctica’s gravity hole developed over eons. With sophisticated computer models, they used physics-based reconstructions to rewind the flow of rocks in the interior and track changes back 70 million years, back to the time of the dinosaurs.

Those past snapshots revealed that the gravity hole started off weaker. Then, between about 50 and 30 million years ago, the gravity hole started to gain strength. The timing overlaps with major changes in Antarctica’s climate system, including the onset of widespread glaciation.

Going forward, Forte hopes to test for a causal connection between this strengthening gravity hole and the ice sheets, using new modeling that links gravity, sea level and continental elevation changes.

The aim is to address one big question: “How does our climate connect to what’s going on inside our planet?” Forte said.