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Sustainable Energy

Can Floating Solar Help India Expand Renewables Without More Land?

India’s new Pradhan Mantri Surya Sarovar Yojana aims to add 5,000 MW of floating solar capacity by 2030–31. By using reservoirs and other water bodies, the scheme could help expand renewable energy while easing pressure on scarce land. Its battery-storage requirement also aims to make solar power more reliable and useful during peak demand.

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Floating solar panels illustrating the Pradhan Mantri Surya Sarovar Yojana’s push for renewable energy on water bodies
Floating solar panels under the ₹5,070-crore Pradhan Mantri Surya Sarovar Yojana, targeting 5,000 MW by 2030–31. Representational image. Image credit: Abdulaziz hasan/Pexels

India is adding solar power rapidly. But as more panels are installed, another question is becoming harder to ignore: where will all of them be installed? Floating solar offers one possible answer. Large ground-mounted solar projects require vast, contiguous parcels of land. This is easier in states such as Rajasthan and Gujarat, which have abundant land and high solar radiation. But the model is harder to replicate in densely populated, land-constrained states such as Kerala.

The Union Cabinet’s approval of the Pradhan Mantri Surya Sarovar Yojana, a ₹5,070-crore scheme, seeks to address this constraint by expanding solar generation to reservoirs and other water bodies. The programme will provide central financial assistance of up to ₹1 crore per MW for floating solar projects and aims to add 5,000 MW by 2030–31. It will be implemented by the Solar Energy Corporation of India (SECI). India currently has only around 0.7 GW of installed floating solar capacity, despite an estimated potential of 102 GW.

How Is This Beneficial for Small States?

India’s solar expansion has been concentrated largely in Rajasthan and Gujarat, where large areas of relatively inexpensive land and strong solar radiation have supported utility-scale projects. But land acquisition can involve rehabilitation and resettlement, while large solar parks can compete with agriculture and other land uses.

Floating solar offers another option: generating electricity from suitable water surfaces without occupying large areas of land. This could be particularly relevant for states with limited land availability. Kerala, for example, faces much greater competition for land from settlements, agriculture and infrastructure than states with large open tracts.

Floating solar panels covering a large water body surrounded by forest
Reservoirs could provide new space for solar power as India expands floating solar under the Pradhan Mantri Surya Sarovar Yojana. Representational image. Image credit: photovs/iStock

But not every reservoir can become a solar park. Water bodies have multiple uses, including drinking water, irrigation, fisheries and power generation. Projects would therefore need careful site selection and environmental assessment.

Addressing The Storage Dilemma

The programme does not stop at adding solar panels. Projects receiving support will have to include battery energy storage equivalent to at least two hours of generation. Across the programme, this is expected to amount to around **10,000 MWh of storage. That addresses another challenge facing India’s renewable-energy transition.

Solar generation peaks during the day, while electricity demand can remain high into the evening. Batteries can store excess solar power and release it when demand rises. Storage could also reduce renewable-energy curtailment, when available electricity is not used because the grid cannot absorb all the generation. The scheme therefore combines two priorities: adding renewable capacity and making that power more useful to the grid.

The 278-MW Omkareshwar floating solar park on the Narmada River in Madhya Pradesh’s Khandwa district is currently the country’s largest floating solar project. Plans are in place to scale it up to 600 MW. However, the project does not have on-site battery storage. The new scheme could encourage a different model, where floating solar and storage are developed together from the beginning.

But Water Is Not Empty Space

Floating solar can ease pressure on land, but it comes with its own environmental and technical questions. Large installations can affect aquatic ecosystems, water quality, fisheries and other uses of reservoirs. The technology can also be more expensive and technically complex than ground-mounted solar. This makes site selection critical. The question is not simply how much floating solar India can install, but where it can be installed without creating new environmental or social costs.

A New Option For India’s Energy Transition

The government’s 5,000-MW target is small compared with India’s estimated 102 GW floating solar potential. But the scheme could help move the technology from a niche application towards a larger role in India’s renewable-energy system. Its significance lies elsewhere.

India’s renewable transition is increasingly about where clean-energy infrastructure can be built and how the electricity can be delivered when it is needed. Floating solar could help address both challenges — using suitable water surfaces to reduce pressure on scarce land while pairing solar generation with storage.

For land-constrained states such as Kerala, that could open another avenue for renewable-energy expansion. Nationally, the scheme could help India find new spaces for clean energy — without assuming that every available piece of land must become a solar park.

Sustainable Energy

India’s Power Grid Gets Greener: Green Energy Break a New Record

India’s solar and wind energy crossed the 100 GW mark for the first time, supplying nearly half of the country’s electricity at one point. The milestone highlights the growing role of renewables in meeting India’s rising power demand—and the storage challenges that could shape the next phase of the energy transition.

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Solar panels and wind turbines generating renewable energy at sunset, representing India's growing solar and wind power capacity.
A solar farm and wind turbines generate clean electricity, reflecting the growing role of solar and wind energy in India's power grid. Representational image. Image credit: Kenueone/Pixabay

As India grappled with another summer of soaring electricity demand, the country’s power grid quietly reached a milestone. For the first time, solar and wind together generated more than 100 gigawatts (GW) of electricity, supplying nearly half of the country’s power at one point.

According to Grid Controller of India Ltd. (GRID-INDIA), utility-scale solar and wind generation reached 103.7 GW at 12.05 pm on July 13, the highest recorded so far. A few minutes later, the two sources supplied 42.79% of the electricity flowing through the national grid. The following day, generation crossed the 100 GW mark again, showing that the achievement was not a one-off event.

The record comes at a time when rainfall has been lower than usual. According to the India Meteorological Department (IMD), the southwest monsoon is expected to bring about 90% of the country’s normal rainfall this year. With lower inflows into reservoirs, hydropower generation can come under pressure, making solar and wind even more important in meeting electricity demand.

The achievement signals a broader shift. Renewable energy is no longer just expanding on paper through new projects—it is increasingly helping power homes, businesses and industries during periods of high demand.

Solar and Wind Energy: India’s Growing Demand for Electricity

India’s appetite for electricity continues to grow.

According to Power Minister Manohar Lal, the country’s peak electricity demand has already reached about 271 GW this year. The government expects it to touch around 300 GW by 2027, driven by rising use of air conditioners, electric vehicles, data centres and industrial activity.

Meeting that demand has traditionally meant relying on coal-fired power plants. This year, however, solar and wind energy has played a larger role. According to GRID-INDIA, solar generation reached a record 81 GW during the April heatwave, helping ease pressure on conventional power plants during the middle of the day.

The International Energy Agency (IEA) expects India to remain one of the world’s fastest-growing renewable energy markets through the rest of the decade. But it also warns that investment in electricity grids and storage must grow alongside renewable energy.

Solar and wind energy in India
Rooftop solar panels installed on a residential home, highlighting the growing adoption of distributed solar energy to meet household electricity needs and support India’s clean energy transition. Representational image. Image credit: AS Photography/Pixabay

The Challenge Begins After Sunset

The July record was achieved around noon, when solar panels generate their highest output. Electricity demand, however, often remains high long after sunset.

That is why many experts say the next phase of India’s clean energy transition will depend less on building more solar parks and more on storing the electricity they generate.

“The achievement shows the national grid can absorb much larger volumes of renewable electricity than before. The next priority is expanding energy storage so surplus solar power generated during the day can be supplied after sunset,” said Shreya Jai, Energy Lead at Climate Trends.

Solar Energy and Storage Challenges

Research points in the same direction. A recent study by researchers from the University of California, Berkeley, the India Energy and Climate Center and partner institutions found that expanding battery storage and making the grid more flexible would allow India to integrate much larger shares of solar and wind while maintaining a reliable electricity supply.

Disha Aggarwal, Fellow at the Council on Energy, Environment and Water (CEEW), said the milestone shows renewable energy is becoming a larger part of the country’s actual electricity supply, rather than just its installed capacity. She said the next priority should be scaling up energy storage, strengthening reserve capacity and creating electricity markets that can better support evening demand.

Storing renewable energy, however, remains one of India’s biggest challenges. Battery systems are still expensive, while pumped hydro projects require suitable terrain, long construction periods and multiple regulatory clearances. Expanding transmission networks to carry renewable power from generation centres to demand hubs is another hurdle.

Crossing the 100 GW mark shows that India can generate renewable electricity at an unprecedented scale. The bigger challenge now is ensuring that clean power generated during the day can be stored and delivered when homes, hospitals and industries need it most.

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Sustainable Energy

Could This Molecular Sponge Change Nuclear Wastewater Forever?

Tritium has long resisted conventional wastewater treatment because it behaves almost exactly like ordinary water. Researchers now say a “molecular sponge” may finally make separating the radioactive isotope faster and more efficient.

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Tritium
A conceptual illustration showing tritium, a radioactive isotope of hydrogen, and its atomic interactions. Tritium's similarity to ordinary hydrogen makes it difficult to separate from water during nuclear wastewater treatment. Image credit: Aprott/iStock

For decades, tritium has remained the one radioactive contaminant that nuclear engineers could not efficiently remove from wastewater. Unlike other radioactive elements, tritium becomes part of the water molecule itself, making it nearly impossible to separate using conventional treatment methods. Instead, facilities have relied on energy-intensive distillation or, in some cases, the controlled dilution and release of treated water that still contains tritium within regulatory safety limits.

Now, researchers in China report a possible solution. In a study published in Environmental Science & Technology, they developed a metal-organic framework (MOF)-coated material that significantly improves tritium separation during distillation. This study builds on work that won the Nobel Prize in Chemistry last year. If the technology performs similarly outside the laboratory, it could make treating radioactive wastewater far more efficient.

tritium
Image credit: Environ. Sci. Technol. 2026

The problem Hidden Inside a Water Molecule

Most radioactive contaminants can be removed using filters or chemical treatment. Tritium is different because it replaces one of the hydrogen atoms in the water molecule itself. That means the contaminated water looks and behaves almost exactly like clean water.

For decades, the only practical way to separate the two has been distillation. Since tritiated water boils at a slightly different temperature, the process eventually works. But the difference is so tiny that it requires enormous distillation towers and a great deal of energy.

The difficulty came into public focus in 2023 when Japan began releasing treated wastewater from the Fukushima Daiichi nuclear power plant into the Pacific Ocean. Although most radioactive substances had been removed, tritium remained because no practical technology existed to separate it at such a large scale. Instead, the water was diluted before being released under international safety standards.

A Sponge at the Molecular Level

Inside every distillation tower are materials called packings, which create surfaces where water vapour and liquid interact. Traditionally, these packings simply help the process along. The researchers turned them into active participants.

They coated a stainless-steel mesh with a metal-organic framework (MOF) called NH₂-MIL-101(Cr). MOFs are often described as molecular sponges because they contain countless microscopic pores packed into a tiny space. But this sponge does more than hold water. Its chemical structure encourages tritium atoms to exchange places with ordinary hydrogen atoms, making them easier to separate during distillation.

In laboratory tests, the material achieved a separation efficiency of 42.5 theoretical plates per metre, the highest reported for this type of distillation system. The team estimates that a 10-metre distillation column fitted with the new material could outperform the best previously reported packing by 134 times. Compared with the commercial packing materials used today, its overall separation performance could be up to one million times greater under similar industrial conditions.

Those figures still need to be validated outside the laboratory, but they suggest that future treatment systems may no longer need the massive, energy-hungry towers used today.

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Sustainable Energy

India Becomes World’s Fourth-Largest LNG Import Hub as Gas Infrastructure Grows

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LNG import terminal with large liquefied natural gas storage tanks and an LNG carrier docked at a coastal port.
LNG regasification terminal with storage tanks and an LNG carrier, illustrating infrastructure used to import and process liquefied natural gas. Representational image. Image credit: Diego F Parra/Pexels

India has become the world’s fourth-largest market for liquefied natural gas (LNG) regasification capacity after expanding its import infrastructure in 2025, according to the International Gas Union’s (IGU) World LNG Report 2026.

The report says India’s total LNG regasification capacity reached 52.5 million tonnes per annum (mtpa) by the end of 2025, after adding 7.1 mtpa during the year. The increase helped India overtake Spain in global rankings.

The additional capacity came from two projects: the 5 mtpa Chhara LNG terminal in Gujarat and the completion of a breakwater at the Dabhol LNG terminal in Maharashtra, which added 2.1 mtpa by allowing the terminal to operate throughout the year.

LNG is natural gas that is cooled into a liquid so it can be transported by ship. Once it reaches India, it is converted back into gas at regasification terminals and supplied to industries, fertiliser plants, refineries and city gas networks.

Supporting India’s growing energy needs

India’s demand for energy is rising as industries expand and cities grow. Since domestic natural gas production is not enough to meet demand, the country imports a large share of its gas as LNG.

More regasification capacity means India can import larger volumes of LNG from different countries, improving energy security and reducing the risk of supply disruptions. It also gives industries access to a more reliable fuel supply.

The IGU report notes that global LNG trade reached a record 436.98 million tonnes in 2025, with Asia remaining the largest market for LNG.

India has also been working towards increasing the share of natural gas in its energy mix from around 6% to 15%. The government sees natural gas as a fuel that can help reduce dependence on coal while supporting sectors where cleaner alternatives are still developing.

A transition fuel with challenges

Although natural gas burns cleaner than coal, it is still a fossil fuel. Many experts describe it as a transition fuel because it can help lower emissions in the short term while renewable energy continues to expand.

However, natural gas also has environmental concerns. Methane, the main component of natural gas, is a powerful greenhouse gas, and leaks during production and transport can reduce its climate benefits.

India is therefore following a dual approach: expanding gas infrastructure to meet current energy needs while continuing to invest in solar, wind, green hydrogen and battery storage to achieve its long-term climate goals.

The IGU report shows that India’s latest investments are aimed at balancing energy security, economic growth and the transition to cleaner energy, even as the country continues to expand its renewable energy capacity.

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