Public roofs, measured

Solar panels on Britain's public buildings, measured from above.

Schools, hospitals, stations, town halls — the public estate is covered in big, flat, sunlit roofs that mostly sit idle. We measure each one from above, the same aerial read we run on homes, and publish what it could actually generate.

What's sitting up there

33.6 MWp
of solar could fit on just the 15 schools, hospitals and civic buildings we've measured so far
~10,949
typical homes' worth of electricity a year, from those roofs alone

The biggest single roof in that set is Royal Derby Hospital — room for about 15,076 panels (6.0 MWp). And these buildings suit solar unusually well: a hospital never closes, so the output gets used on site; a school exports its summer surplus while the panels pay down its winter bills.

From roof to reality

How public buildings actually get solar.

Government programmes

Great British Energy's first project (2025) is putting rooftop solar on around 200 schools and 200 NHS sites, with the bill savings staying with the school or hospital. The Public Sector Decarbonisation Scheme funds energy upgrades — including rooftop solar — across the wider public estate.

Council spend-to-save

Many councils fund panels on their own estate as invest-to-save capital: the panels are paid for from the energy bills they then reduce. Leisure centres — big flat roof, heated pool underneath — are often the first pick.

Community energy

Local community energy groups raise the money through share offers, install the panels, and sell the building its own roof's power at below-grid rates. It's how many schools and civic buildings that lack capital budgets get panels.

Power purchase agreements

A developer funds and owns the rooftop system; the building commits to buying the electricity at an agreed rate. No upfront cost to the public body — the roof does the work.

The bigger picture

What could the future look like?

Today, almost every public building buys every unit of electricity it uses. It doesn't have to work that way. The same roofs could generate through the day, power the building underneath, and give the surplus back to the grid — energy production spread across the buildings we already own, not just distant fields.

The money side is the interesting part. Community energy schemes already prove the model in miniature: local people fund the panels, the school or leisure centre buys its own roof's power for less, and the returns stay in the area instead of leaving it. Scale that across an estate and a town's energy bill starts becoming a town's income.

That's why we've measured famous buildings across the UK — cathedrals, palaces, museums, town halls — with the same technology we run on people's homes. Not because anyone is putting panels on St Paul's dome next week, but because the conversation about where our energy comes from goes better when the roofs in it have real numbers attached: measured from above, shown as ranges, survey always required.

Morning sun on the rooftop solar panels of a red-brick UK semi-detached home

You've seen the landmarks.

Check your own roof.

Enter your property number and postcode today, and we'll read your roof from the sky to get a better understanding of whether or not your roof is suitable for solar panels. Free, takes minutes, and no account necessary.

Every building we've measured

Landmarks, stations, schools, hospitals and supermarkets — what the country's largest roofs could generate if they went solar.

Aerial view of Thomas Telford School
School Telford

Thomas Telford School

1.2 MWp
927 MWh–1.1 GWh a year · ~382 homes
Aerial view of Manchester Town Hall
Civic & public Manchester

Manchester Town Hall

1.2 MWp
810 MWh–996 MWh a year · ~334 homes
Aerial view of Riverside Museum, Glasgow
Landmark Glasgow

Riverside Museum, Glasgow

1.1 MWp
708 MWh–866 MWh a year · ~292 homes
Aerial view of Windsor Castle
Landmark Windsor

Windsor Castle

1.1 MWp
912 MWh–1.1 GWh a year · ~375 homes
Aerial view of York Minster
Landmark York

York Minster

1.1 MWp
821 MWh–1.0 GWh a year · ~338 homes
Aerial view of Tesco Extra New Malden
Supermarket New Malden, London

Tesco Extra New Malden

1.1 MWp
890 MWh–1.1 GWh a year · ~367 homes
Aerial view of Liverpool Cathedral
Landmark Liverpool

Liverpool Cathedral

1.1 MWp
772 MWh–940 MWh a year · ~317 homes
Aerial view of Edinburgh Castle
Landmark Edinburgh

Edinburgh Castle

1.0 MWp
693 MWh–844 MWh a year · ~285 homes
Aerial view of Kelvingrove Art Gallery and Museum
Landmark Glasgow

Kelvingrove Art Gallery and Museum

872 kWp
559 MWh–683 MWh a year · ~230 homes
Aerial view of Bristol Metropolitan Academy
School Bristol

Bristol Metropolitan Academy

850 kWp
680 MWh–828 MWh a year · ~279 homes
Aerial view of St Paul's Cathedral
Landmark London

St Paul's Cathedral

800 kWp
673 MWh–820 MWh a year · ~276 homes
Aerial view of Morrisons Outland Road
Supermarket Plymouth

Morrisons Outland Road

776 kWp
620 MWh–756 MWh a year · ~255 homes
Aerial view of London Charing Cross
Railway station London

London Charing Cross

673 kWp
555 MWh–678 MWh a year · ~228 homes
Aerial view of Ibrox Stadium
Stadium Glasgow

Ibrox Stadium

638 kWp
388 MWh–478 MWh a year · ~160 homes
Aerial view of Sheffield
Railway station Sheffield

Sheffield

611 kWp
453 MWh–555 MWh a year · ~187 homes
Aerial view of Royal Albert Hall
Landmark London

Royal Albert Hall

517 kWp
444 MWh–543 MWh a year · ~183 homes
Aerial view of Selhurst Park
Stadium London

Selhurst Park

503 kWp
394 MWh–482 MWh a year · ~162 homes
Aerial view of Turf Moor
Stadium Burnley

Turf Moor

487 kWp
313 MWh–382 MWh a year · ~129 homes
Aerial view of Manchester Central Library
Civic & public Manchester

Manchester Central Library

464 kWp
329 MWh–402 MWh a year · ~135 homes
Aerial view of London Bridge
Railway station London

London Bridge

437 kWp
324 MWh–397 MWh a year · ~134 homes
Aerial view of Vitality Stadium
Stadium Bournemouth

Vitality Stadium

406 kWp
341 MWh–416 MWh a year · ~140 homes
Aerial view of Mitchell Library
Landmark Glasgow

Mitchell Library

337 kWp
228 MWh–281 MWh a year · ~94 homes
Aerial view of Ashton Gate Stadium
Stadium Bristol

Ashton Gate Stadium

335 kWp
246 MWh–302 MWh a year · ~101 homes
Aerial view of Cardiff Central
Railway station Cardiff

Cardiff Central

287 kWp
235 MWh–285 MWh a year · ~96 homes

Page 4 of 5 · 104 buildings

Common questions

FAQs.

How do schools get solar panels in the UK?

Four common routes: Great British Energy’s first project (2025) is putting rooftop solar on around 200 schools, with the savings staying with the school; the Public Sector Decarbonisation Scheme funds energy upgrades including solar; some councils and academy trusts fund panels directly as spend-to-save capital; and community energy groups fund panels through local share offers, with the school buying the power at below-grid rates.

How do hospitals and NHS sites get solar?

The same Great British Energy first wave covers around 200 NHS sites, and the Public Sector Decarbonisation Scheme applies too. Hospitals are the strongest case in the public estate: they never close, so the panels’ output is used on site around the clock rather than exported.

Who decides whether a public building gets panels?

Whoever operates the estate: the council’s property or climate team for civic buildings and leisure centres, the governing body or academy trust for a school, the trust’s estates team for a hospital. If you want it to happen, that’s who to write to — and a measured page for the building is a better opener than a hunch.

How many solar panels fit on a large flat roof?

As a rule of thumb, roughly one panel per six square metres of roof once plant, edges and row spacing are accounted for — about 0.06–0.07 kW per square metre. A 10,000 m² roof holds roughly 1,500–1,700 panels. Every figure on this page is measured from the building’s actual roof rather than ruled-of-thumb.

How accurate are these figures?

They are full-fit theoretical figures: panels on every measurable roof section, before structure, loading, shading from plant, planning and access are considered. Treat them as a ballpark of potential, not a feasibility study — a real project starts with a commercial solar assessment.

What about my own roof?

A typical UK semi takes around 10–12 panels (roughly 4–4.5 kW). Enter your postcode on our roof check and we’ll measure your actual roof — direction, usable area and sunlight — in about a minute, free.

Full methodology, assumptions and cross-checks: how we measure. Includes solar data from Google.