---
title: "EU rooftops power Europe; could meet 40% of EU demand by 2050"
sdDatePublished: "2026-08-31T10:07:00Z"
source: "https://www.europarl.europa.eu/RegData/etudes/ATAG/2026/788149/EPRS_ATA(2026)788149_EN.pdf"
topics:
  - name: "solar power"
    identifier: "medtop:20001209"
  - name: "energy industry"
    identifier: "medtop:20000261"
  - name: "environmental policy"
    identifier: "medtop:20000423"
  - name: "infrastructure policy"
    identifier: "medtop:20001264"
  - name: "legislative body"
    identifier: "medtop:20000615"
locations:
  - "Pakistan"
  - "Germany"
  - "France"
  - "Ukraine"
---


EU rooftops power Europe; could meet 40% of EU demand by 2050

What if Europe's rooftops powered its energy

At a glance
Scientific Foresight: What if?
EPRS | European Parliamentary Research Service
What if Europe's rooftops powered its energy
security?
Vasco Guedes Ferreira, Scientific Foresight Unit (STOA)
Published: September 2026 | Document number: PE 788.149
Russia's targeting of Ukraine's power infrastructure demonstrates that decentralised solar photovoltaics (PV)
and storage can help maintain critical services when centralised grids fail. New analysis suggests European
Union rooftops could meet 40 % of long-term electricity demand by 2050, yet the technology remains under-
deployed. This 'What if' discusses how the EU could treat building-integrated solar not as a green add-on, but as
a deliberate pillar of energy security.
Background
Solar photovoltaic (PV) panels and batteries on apartment blocks, public buildings and hospitals in Ukraine
keep lights, lifts and water pumps running when central power plants, transformers and high-voltage lines come
under attack, providing extra resilience for basic services.
New Joint Research Centre analysis suggests the EU's 271 million building rooftops could host around
2 300 GWp (Giga-Watt-peak, a measure of maximum photovoltaic system generating capacity) of solar PV
installed capacity and generate roughly 2 750 TWh of electricity per year – close to 40 % of that needed in a
fully renewable EU power system by 2050. Yet only 10 % of EU rooftops currently host solar PV, even though the
technology is mature and costs have fallen significantly.
The revised Energy Performance of Buildings Directive and the EU solar energy strategy under REPowerEU
introduce solar-ready requirements and phased solar mandates for new and existing buildings. For solar PV
systems, utility-scale and rooftops in all building types, the proposed EU goal is to reach 700 GW by 2030,
from 406 GW in 2025. However, only 89 GW is rooftop solar in homes. Rooftop PV systems in Europe now
cost €900 to €1 300/kWp; around €3 000-€4 000 per typical installation. Adding a battery increases the
price by €4 000-€5 000. Balcony PV is cheaper in absolute terms. Small system prices vary from €200 to
€1 000 for larger models with limited battery storage. Germany leads adoption of these systems in the EU at
around 435 000 new registered balcony PVs in 2024. Globally, for example in Pakistan, a rapid consumer-led
solar boom has added gigawatts of behind-the-meter capacity, to the point that national electricity statistics
have become unreliable and utility revenues have fallen sharply.
Potential impacts and developments
Buildings are responsible for around 42 % of EU energy consumption and 36 % of energy-related greenhouse
gas emissions. They can become active energy system nodes, producing, storing, and at times securing the
electricity grid stability in extreme weather events, cyber-attacks, and physical attacks on grid infrastructure.
Storage is central; solar PV alone produces during sunlight hours , shutting down at night. They can only
provide power during grid outages if paired with grid-forming inverters and battery storage. The resilience role
demonstrated in Ukraine depends on this combination, not on PV panels alone.
While policy measures are still required for vulnerable consumers and social-housing residents, balcony solar is
also helping broaden the number of potential users, for example households who lack access to rooftops, and
tenants who want to take their system when they move.
EN

Cheaper solar PV systems and wider deployment transforms buildings and households from passive consumers
to active producers. However, as PV generation moves behind-the-meter at scale, electricity grid operators
lose supply and demand visibility, and the economics of the remaining grid, financed largely through 'volume'
tariffs, comes under pressure. The grids might also not be ready to cope with bidirectional electricity flows. In
addition, behind-the-meter PV also raises data governance and cybersecurity questions. Policymakers will need
to address the potential impacts by: nudging consumers towards PV systems coupled with batteries; adjusting
tariff and market design; and changing the incentive structure for grid planning and investment. At the same
time, these new power systems will need to operate within the requirements of the Cybersecurity Directive
(NIS2) and Cyber Resilience Act.
Rooftop or balcony PV cannot replace system planning, grid expansion or utility-scale clean power generation,
but they could strengthen security of supply, as seen in Ukraine and Pakistan.
The EU is trying to match future equipment demand with domestic factories as encouraged by the Net-Zero
Industry Act. It is suggested that accelerated balcony and rooftop deployment could encourage new and
expanded European manufacturing.
Anticipatory policymaking
Treating rooftop solar and batteries as a security option implies integrating building-level renewables and
storage on the same footing as gas storage targets or interconnection objectives. This would mean reflecting
balcony and rooftop solar more systematically in national energy and climate plans and crisis preparedness
assessments under the Internal Market for Electricity and the Gas Security of Supply Regulations. Distributed PV
generation could provide both decarbonisation and energy security.
Several Member States have already moved in this direction. For example, Germany's simplified registration
regime for balcony systems and reduced VAT rates on solar equipment in multiple EU countries demonstrate
that barriers to entry can be lowered quickly. France is also moving forward with mandatory solar PV in
commercial and industrial buildings, covered car parks, and support for collective self-consumption. These
approaches offer transferable models for other Member States operating within the same EU regulatory
framework.
The economics of grid financing will also require attention. As rooftop and balcony solar PV power generation
rises, 'volume' network charges will collect less revenue, when grids require greater investment to cope with
increasing electrification of end-uses and to manage bidirectional flows. Policymakers could press for tariff and
market-design reforms that distribute network costs fairly without penalising prosumers (consumers that are
also producers) or limiting deployment. Abrupt, retroactive measures should be avoided to maintain consumer
confidence. Tariff design could also distinguish between those who add intermittent generation without storage
from those who use batteries to mitigate negative impact on grid management.
Storage remains the key but costlier enabler. Battery prices have fallen sharply, but adding storage can still
add substantially to the cost of a household system. However, the benefits of rooftop and balcony PV for both
households and the electricity system can only be achieved if sufficient battery storage is put in place. Targeted
policy interventions and clear price signals are therefore needed.
'What ifs' are short publications about new or emerging technologies aiming to accurately summarise the
scientific state-of-the art in an accessible and engaging manner. They further consider the impacts such
technologies may have – on society, the environment and the economy, among others – and how the European
Parliament may react to them. As such, they do not aim to be and cannot be prescriptive, but serve primarily as
background material for the Members and staff of the European Parliament to assist them in their parliamentary
work.
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European Parliamentary Research Service

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© European Union, 2026
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What if Europe's rooftops powered its energy security?