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How IIT Kanpur is Paving the Way for a Solar-Powered Future in India’s Energy Transition

At IIT Kanpur, an ambitious solar energy project is reshaping the way India approaches renewable energy. By integrating solar power with smart grids and energy storage, the project aims to make communities more energy-independent and sustainable

Dipin Damodharan

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A house in the residential lanes of IIT Kanpur campus, equipped with a 5kWp Solar PV system and Smart Meters. Image credit: Dipin Damodharan

The narrow roads within IIT Kanpur’s campus wind through a vibrant residential neighbourhood, where compact, beautifully designed homes house the staff. Above these homes, solar panels gleam in the sunlight—not merely as an aesthetic feature, but as a symbol of a much larger energy transformation underway. This gleam reflects a bold vision for India’s energy future, one that’s driven by solar power, smart technology, and community participation.

At the heart of this transformation is IIT Kanpur, located in India’s Uttar Pradesh, lighting the way toward an energy future powered by clean, renewable energy. With innovation as its cornerstone, IIT Kanpur is shaping a new model of energy independence for India—a model that could be replicated across the country.

The spark of change

In 2017, the Indo-US partnership, known as the US-India Collaborative for Smart Distribution System with Storage (UI-ASSIST), was launched, bringing together top institutions from both countries. Led by Washington State University in the U.S. and IIT Kanpur in India, the partnership also includes IIT Delhi, IIT Madras, IIT Roorkee, IIT Bhubaneswar, and TERI (The Energy and Resources Institute). Their collective goal: to create scalable, sustainable solutions for integrating renewable energy into India’s power grid. “This new consortium demonstrates the U.S. and India’s commitment to ensuring access to affordable and reliable energy in both countries,” said then-U.S. Energy Secretary Rick Perry. “We know that continued grid innovation will foster economic growth and enhance energy security in both the United States and India.”

IIT Kanpur’s residential area has become a testing ground for this vision. Out of the 51 homes in residential lanes 32 and 33, 30 houses were selected based on a shadow analysis survey. These homes have been equipped with 5kWp Solar Photovoltaic (PV) systems and state-of-the-art smart meters, turning residents into active energy producers. This transformation was part of a larger vision to create a microgrid capable of providing energy independence to the community.

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Image credit: Dipin Damodharan

A model of solar empowerment

Imagine this: families, once entirely dependent on the grid, now waking up to homes powered by the sun. “In Lane 32, 12 of the 21 homes are now powered by solar energy, while 18 out of 30 homes in Lane 33 have solar PV installations,” says Shiv Kumar Singh, Research Establishment Officer at IIT Kanpur’s Department of Electrical Engineering.

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Image credit: Dipin Damodharan

These homes are no longer passive consumers. With 5 kW of solar capacity, they actively contribute to the energy network, providing power to the grid and helping to reduce the community’s overall carbon footprint. For IIT Kanpur, this project is more than just an experiment—it’s a proof of concept for how solar energy can be scaled beyond cities and industries and into residential communities.

The hidden power: Energy storage and control

At the core of this experiment lies a powerful duo: energy storage and smart management. According to Shiv Kumar Singh, the project integrates two centralized lithium-ion battery storage systems—one with a 140 kWh capacity and another with 100 kWh. These systems store excess solar energy generated during the day and return it to the grid during the evening, when the sun sets.

But it doesn’t stop there. The project is made even smarter by the use of data. Smart meters, installed throughout the system, constantly collect data on energy consumption. This data is fed into a SCADA control center, where it’s analyzed in real-time to optimize energy usage and ensure the grid operates as efficiently as possible. This intelligent, data-driven approach maximizes every watt of energy generated and consumed.

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Semi-urban field pilot: Network architecture overview.

Driving the future of clean transportation

As solar energy begins to power homes, another puzzle piece is being put in place: clean transportation. At IIT Kanpur, two new electric vehicle (EV) charging stations have been set up near the main gate and the nearby Community Centre. These stations are equipped with a variety of chargers, including 50kW DC fast chargers, 22kW AC chargers, and 7.6kW Vehicle-to-Home (V2H) chargers, integrated with a 25kW solar PV array.

This isn’t just about charging vehicles; it’s about creating a self-sustaining ecosystem where transportation and energy generation are interconnected. By using clean energy to charge electric vehicles, IIT Kanpur is contributing to a future where urban mobility is powered by renewable resources, significantly reducing the carbon footprint of transportation.

Smart and sustainable: The microgrid revolution

The centerpiece of this entire initiative is the microgrid, which is controlled and optimized by a sophisticated Microgrid Controller. This technology ensures that energy is distributed efficiently among solar PV systems, storage units, and EV charging stations, keeping everything balanced and functioning smoothly. Thanks to real-time data analysis from the smart meters and SCADA center, the system isn’t just reactive—it’s proactive, learning from its environment and optimizing energy use as it goes.

Urban field demonstration pilot at IIT Kanpur

With growing urban energy demands, India faces a unique set of challenges. Multi-story buildings, high air-conditioning loads, and reliance on Diesel Generators (DGs) for backup power add significant strain to the grid and contribute to pollution. IIT Kanpur is tackling these issues head-on with two groundbreaking sub-pilots that demonstrate innovative energy solutions.

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Shiv Kumar Singh explaining the project at the Smart Grid Control Centre at IIT Kanpur.Image Credit: Dipin Damodharan

The first sub-pilot features a small, grid-connected microgrid designed to supply energy to two multi-story residential towers. By integrating Solar PV systems and Battery Energy Storage Systems (BESS), this project reduces the reliance on DGs and provides a more sustainable, reliable energy source. During power outages, BESS ensures uninterrupted power for essential services, such as lifts and lighting in common areas.

The second sub-pilot showcases the potential of Thermal Energy Storage (TES) system, which, inaugurated in November 2020, help reduce peak air-conditioning loads. By storing cool energy during off-peak hours, TES systems cut energy consumption during peak demand times. This system has already been installed at IIT Kanpur’s Centre for Environmental Science and Engineering, where a 775 TRHR TES system is actively reducing air-conditioning loads, further enhancing energy efficiency.

The environmental impact

IIT Kanpur’s approach goes beyond technology; it’s about creating lasting environmental and social benefits. By integrating TES and solar PV systems, the initiative not only reduces peak load but also cuts carbon emissions, contributing to India’s carbon-neutral goals. The integration of BESS ensures that the urban microgrid remains reliable even during power outages, helping foster long-term sustainability.

The 775 TRHR TES system at the Centre for Environmental Science and Engineering plays a key role in reducing the building’s air-conditioning demand. By using phase change materials with glycol solution as the coolant, it absorbs off-peak energy to cool the building during peak periods, leading to significant energy savings.

According to a research paper (2022) by Suresh Chandra Srivastava, Sameer Khandekar, Shiv Kumar Singh, Vinay Kumar Tiwari, and Ankush Sharma from IIT Kanpur, this system has led to a reduction in peak load energy consumption, as verified through data recorded by the SCADA system monitoring the Institute’s power distribution network. By discharging during peak hours and charging during off-peak hours, the system helps reduce peak load and offers potential cost savings, as electricity costs are higher during peak times.

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Thermal Energy Storage (TES) system at IIT Kanpur’s Centre for Environmental Science and Engineering.Image Credit: Dipin Damodharan

This technology has the potential for widespread adoption in smart cities and data centers across India, further advancing the country’s renewable energy vision.

Shaping India’s renewable energy future

India’s goal of achieving 500 GW of renewable energy capacity by 2030, with a significant portion coming from solar, is ambitious but increasingly attainable with projects like IIT Kanpur’s. With nearly 40% of solar PV installations expected to be on rooftops connected to the distribution network, initiatives like this one are essential for meeting the country’s renewable energy targets.

By demonstrating how solar energy, energy storage, and sustainable infrastructure can be integrated at the community level, IIT Kanpur is not just building a model for India—it’s creating a blueprint for the world. As the world shifts towards a cleaner, more sustainable future, IIT Kanpur is leading the way.

(This story is produced as part of the Internews Earth Journalism Network’s Science Communicators Workshop on renewable energy)

Dipin Damodharan is an award-winning journalist, editor and media entrepreneur, and Co-founder and Editor-in-Chief of EdPublica, an independent global media platform covering education, science, research, innovation, climate and public policy. With more than a decade of experience in journalism, he has worked across print, digital and multimedia media. His reporting explores science, climate, sustainability and the social impact of research and innovation. His work has been recognised by the Solutions Journalism Network and other journalism organisations.

Earth

Scientists Map Earth’s Sand Dunes in a New Global Survey

A new global map of Earth’s sand dunes is giving scientists a clearer picture of how wind, sediment and climate interact to shape dry landscapes. The dataset could also help researchers interpret ancient climates on Earth and dune patterns on Mars.

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Wind-shaped sand dunes casting long shadows across a desert landscape, with footprints visible along a dune ridge.
Wind-shaped sand dunes form ridges and valleys across a desert landscape, illustrating the landforms examined in a new global study of Earth's sand dunes. Image credit: Sergey Guk/Pexels

Scientists have mapped the distribution of Earth’s wind-blown sand dunes at a global scale, providing a new way to study how sediment, wind and climate shape some of the planet’s driest landscapes. A sand dune is a hill or ridge of loose sand that has been formed and shaped by the wind. Dunes are commonly found in deserts and along beaches, wherever there is plenty of loose sand and enough wind to move it. Sand dunes are mainly classified into barchan (crescent-shaped), linear, star, parabolic, and transverse dunes, based on their shape and wind patterns.

The study, published in Nature Communications, finds that dune formation cannot be explained by aridity or wind speed alone. In dry regions, dunes are strongly associated with the movement of sediment towards areas where it accumulates. In wetter regions, stronger winds are needed to move enough sand to overcome the effects of vegetation and other surface conditions.

Andrew Gunn, a researcher at Monash University’s School of Earth, Atmosphere and Environment, built the map using globally available satellite imagery and topographic data. The resulting dataset identifies dunes across Earth’s continents and distinguishes their different forms.

The map covers dunes detected across about 7.8% of Earth’s surface. Their distribution is concentrated largely in the lower mid-latitudes, although the study found that the presence of dunes depends on a combination of sediment supply and the way wind transports that material.

Travelling through sand dunes in the desert.
A camel caravan crosses desert dunes at sunset. A new global study maps Earth’s wind-blown dune systems and examines how wind and sediment availability influence where they form. Image credit: Yasin Gündogdu/Pexels

Wind is Only Part of the Story

A desert may have strong winds and still lack dunes.

That is because wind needs loose sediment to move. The study found that in arid landscapes, the location of a dune field is closely tied to the availability and movement of sediment. Where material is supplied from several directions and transported towards the same area, sand can accumulate and produce dunes.

The picture changes in places with more rainfall. Vegetation and surface moisture can hold sediment in place, meaning winds need to be stronger before enough sand starts moving to build dunes.

The distinction matters when scientists use dunes as evidence of past environments. A dune’s shape and orientation can preserve information about the winds that formed it, but those features can also reflect the source and movement of the sand itself.

The researchers demonstrated this using barchan dunes, the crescent-shaped formations commonly found in areas where winds blow predominantly in one direction. Their orientation can provide information about wind direction, while their arrangement can also reveal something about sediment transport.

A Reference Point for Past Climates

Dunes can outlast the conditions that created them. Their position and form can therefore provide clues about earlier wind regimes, sediment movement and climate, particularly in places where direct observations do not exist. The new dataset gives researchers a consistent global reference rather than requiring them to compare separate regional maps made using different methods. That could be useful for studies of how dry landscapes have changed over time and how wind-driven erosion may respond to shifts in climate.

The map also has a planetary application. Mars has extensive dune fields, but scientists cannot measure its surface winds with anything close to the coverage available on Earth. Dune forms are therefore among the clues used to reconstruct Martian surface conditions.

The Earth dataset does not provide a direct translation from one planet to the other. Instead, it gives researchers a better understanding of how particular dune shapes relate to wind and sediment on Earth, which can inform interpretations of similar landforms on Mars.

The study’s value gives scientists a common dataset for asking why dunes occur where they do — and what their patterns can tell us about the landscapes that produced them.

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Climate

Record Drought and Extreme Heat Push European Rivers to Lows as Wildfires Spread North

The European drought is driving rivers to record lows as extreme heat, wildfires, crop losses and water shortages put Europe’s energy and transport systems under pressure.

Sebin Pious

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European Drought: Rivers Fall as Heat and Wildfires Spread
The Rhine at Bonn-Limperich, Germany, during an exceptionally low water level, with the Konrad Adenauer Rhine Bridge and Siebengebirge (Seven Mountains) in the background. Image credit: Sir James/Wikimedia Commons, CC BY-SA 3.0.

A prolonged European drought combined with extreme heat is pushing major rivers to record lows, disrupting shipping and energy production while worsening crop losses and wildfire risks. As dry conditions spread north, Europe’s water, agriculture, ecosystems and public health systems are coming under increasing pressure.

A long period of low rainfall combined with extreme heatwaves has placed half of the European Union and the United Kingdom under drought conditions. A report published on August 12 by the European Commission Joint Research Centre and the European Drought Observatory reveals that nine percent of the region reached a critical alert level by late July.

Satellite data from Copernicus, the Earth monitoring program of the European Union, shows that severely dry soil is now damaging crops and plants across the continent. In its latest assessment, the observatory warned that “the drought has built up since early spring due to lower rainfall and higher than average temperatures, turning into fuel for devastating wildfires.”

European Drought: Rivers Fall as Heat and Wildfires Spread
Satellite imagery shows exceptionally low water levels along four of Europe’s major rivers—the Loire in France, Po in Italy, Rhine in Germany and Danube in Hungary—in early August 2026. Exposed sandbanks and riverbeds highlight the impact of prolonged drought. Image credit: European Union, Copernicus Sentinel-2 imagery.

European Drought Reaches Across the Continent

The lack of rain has driven four of Europe’s largest rivers—the Rhine, Danube, Loire, and Po—to dangerously low levels. Near Cologne, Germany, the Rhine fell to a fresh record low of 49 centimetres by mid-August, according to the Rhine Waterways and Shipping Authority — nearly 20 centimetres below the previous record of 68 centimetres set earlier in the summer, which had itself broken the prior all-time low recorded in 2018. Because large cargo boats need deeper water to float safely, operators have been forced to carry much lighter loads to avoid getting stuck on the riverbed, and in places river traffic has largely halted. Carrying smaller loads requires more trips, creating major shipping delays for important industrial materials across central Europe.

At the same time, low water levels and rising temperatures are creating a serious energy crisis across the continent. In France, power companies had to cut back nuclear energy production because river water became too warm to safely cool reactors without harming aquatic life. Hydroelectric power generation has also plunged across the Alps, northern Italy, and central-eastern Europe. Copernicus analysts noted that low river flows on the Danube are creating “serious operational challenges” for power plant cooling. In Italy’s Po Valley, the dried-out river basin has triggered a separate disaster: saltwater from the Adriatic Sea has flowed inland into depleted channels, ruining farmland soil and cutting off freshwater supplies for local crops.

Wildfires Burn Over 550,000 Hectares Across Europe

Dry plants and extreme heat have triggered widespread wildfires across the continent. According to August 11 data from the European Forest Fire Information System, 552,437 hectares of land have burned within the European Union since the start of the year, spread across 1,614 individual fires of 30 hectares or larger. Although this total remains below the 667,342 hectares burned by the same date in 2025 — a season that went on to become the worst on record for EU wildfires, with 1,034,552 hectares burned in total — it is significantly higher than the 20-year historical average.

Recent satellite data shows a clear shift: large wildfires are no longer staying just in southern hotspots like Spain and Greece. As dry weather pushes northward, fire risks are expanding into cooler regions, including northwestern France, southern Great Britain, the Alps, and the Balkans. Experts at the Joint Research Centre emphasized that “wildfire risk is no longer confined to southern Europe but is increasingly affecting wider parts of the continent under prolonged hot and dry conditions.”

Declining Harvests and Rising Health Risks

Continued heat and dry soil are dealing a heavy blow to European farmers. According to assessments by the European Joint Research Centre, crop yields across central and eastern Europe have dropped significantly. Production estimates for key spring and summer crops, such as grain maize and sunflowers, have fallen by six to seven percent. Winter crops have also suffered, with yield forecasts declining between one and four percent compared to earlier projections.

High temperatures are having a severe impact on human health as well. Monitoring data from public health agencies and the World Health Organization reveals a sharp surge in heat-related emergency admissions and deaths during extreme temperature episodes. Data compiled from national health agencies — including Germany’s Robert Koch Institute, which alone recorded an estimated 11,900 heat-linked deaths — put the region’s heat-related death toll above 25,000 as of early August, highlighting the severe human cost of this summer’s weather.

Seasonal Outlook and Emergency Response

Weather predictions indicate that dry conditions will continue through early autumn. According to the Copernicus Climate Change Service, drier and warmer weather is expected to persist across central-western Europe and southern Scandinavia through September. Climate experts also warn that a developing El Nino pattern could keep global temperatures higher than normal well into spring 2027. “Water resources, crops, energy systems, river transport, and ecosystems are all under growing pressure,” the report warned, with heatwave risks remaining high through August.

To coordinate emergency aid, the European Union activated its Civil Protection Mechanism. A dedicated fleet of 22 firefighting aircraft, 5 helicopters, and ground teams have been placed on standby across 12 countries. Meanwhile, the Copernicus satellite service has responded to more than 30 emergency requests since June, providing real-time mapping data to help local authorities track active fires and assess land damage on the ground.

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Earth

Asiatic Lions See Remarkable 70% Rise in a Decade

India’s Asiatic lion population has risen from 523 in 2015 to 891 in 2025, marking a 70.4% increase in a decade. But with the species still concentrated largely in Gujarat, the recovery also raises questions about habitat, disease risks, human–lion coexistence and the need for greater geographic resilience.

Vaishnavi V S

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Three Asiatic lions resting together under trees in a dry forest landscape
Asiatic lions rest beneath trees in their natural habitat, highlighting the importance of protecting their remaining wild landscape. Image credit: Abhishek Navlakha/Pexels

India’s Asiatic lion population has increased from 523 in 2015 to 891 in 2025, a 70.4% rise over a decade. Union Environment Minister Bhupender Yadav highlighted the increase on World Lion Day, August 10, crediting forest officials, conservationists and local communities for the recovery. The increase is an important conservation milestone. But for a species whose wild population remains concentrated in a relatively small geographical range, rising numbers are only part of the story.

The Asiatic lion (Panthera leo persica) is one of India’s most significant wildlife conservation successes. Once found across parts of Asia, the subspecies was driven to near extinction by hunting and habitat loss. Its remaining wild population is now concentrated primarily in Gujarat’s Gir landscape and surrounding areas.

A Decade of Population Growth

India’s lion population increased from 523 in 2015 to 674 in 2020 and reached 891 in 2025. The latest increase represents a 70.4% growth over ten years.

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The recovery reflects the impact of long-term protection, habitat management, prey availability, scientific monitoring and the involvement of communities living around lion habitats. But population size alone does not establish whether a species is fully secure.

For the Asiatic lion, where the animals live is almost as important as how many there are.

The Risk of a Concentrated Population

Unlike many large carnivore populations distributed across multiple countries and ecosystems, India’s Asiatic lions remain concentrated largely in Gujarat.

This creates a potential vulnerability. A major disease outbreak, extreme weather event, environmental contamination or other ecological disturbance affecting the Gir landscape could threaten a significant proportion of the population.

Asiatic lions in India
Asiatic lions rest in their habitat in Gujarat’s Gir landscape, the primary stronghold of India’s recovering lion population, which rose from 523 in 2015 to 891 in 2025. Image credit: JC Menon/Pixabay

The risk became particularly evident during the 2018 canine distemper virus outbreak, when several Asiatic lions died. The episode demonstrated how infectious disease can become a serious conservation concern when a species is concentrated within a relatively limited landscape. Disease surveillance, veterinary care and monitoring have therefore become increasingly important alongside conventional habitat protection.

Why a Second Population Matters

The concentration of lions has also driven a long-running debate over establishing another free-ranging population. Kuno National Park in Madhya Pradesh has been proposed as a potential second home for Asiatic lions. The objective is not simply to increase the number of lions but to reduce the species’ dependence on a single geographical stronghold.

A geographically separate population could provide an additional safeguard if disease or another major disturbance affected the Gir landscape. However, the proposal has remained contentious, with questions around habitat suitability, prey availability, management and the transfer of lions from Gujarat. The debate reflects a wider conservation challenge: a species can have a growing population while remaining vulnerable because most of its individuals occupy the same landscape.

More Lions Also Mean a Greater Coexistence Challenge

Population recovery brings another issue into focus: human–wildlife coexistence. As lion numbers increase and animals disperse, they can move through agricultural and other human-dominated landscapes around the protected forests. This creates opportunities for wider habitat use but can also increase interactions with people and livestock.

For local communities, these encounters can mean livestock losses and safety concerns. Lions themselves face risks from roads, open wells, disease and other human-associated hazards.

This makes communities living around lion habitat an important part of the conservation equation. The long-term survival of the species will depend not only on protected forests but also on whether people and lions can continue to share the wider landscape.

For Sustainable Conservation

The increase from 523 lions in 2015 to 891 in 2025 shows that sustained conservation efforts can reverse a historic decline. But the next phase of conservation needs to ask more than whether the population is growing.

It must examine whether available habitat and prey can support further expansion, whether lions are becoming more geographically distributed, whether disease surveillance can detect outbreaks early and whether human–lion conflicts are increasing as the population grows.

The Asiatic lion’s recovery is therefore both an achievement and a reminder of the work ahead. For a species with a highly concentrated wild population, conservation success cannot be measured by numbers alone. Its real test will be whether the population becomes resilient enough to withstand disease, environmental change and the pressures of sharing its habitat with people.

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