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February 24, 20264 citationsOpen Access

Renewable Energy Integration for Net-Zero Buildings: Challenges, Opportunities, and Strategic Pathways

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MAMohammad Omar AlfadilMKMukhtar A. KassemRARamez A. Al-Mansob

Key Points

  • The aim is to evaluate the integration of renewable energy in net-zero energy buildings and identify barriers to adoption.
  • Systematic review of 1285 peer-reviewed articles (2015–2025) from Scopus and Web of Science.
  • Followed PRISMA guidelines for thematic analysis.
  • Assessed various renewable energy integration and efficiency strategies.
  • 70% of studies highlight emissions reduction and cost savings as benefits of NZEBs.
  • 60% report high storage costs as a barrier.
  • 45% cite challenges in grid integration.
  • Only 30% address the dependency on policy frameworks.
  • Effective measures identified include passive solar design, high-performance envelopes, and smart energy management.

Abstract

Buildings account for nearly 40% of global energy use and 36% of CO2 emissions, positioning Net-Zero Energy Buildings (NZEBs) as vital for climate mitigation. However, large-scale adoption remains limited by technical, economic, and policy barriers. This study systematically reviews 1285 peer-reviewed articles (2015–2025) from Scopus and Web of Science, following PRISMA guidelines and thematic analysis to assess renewable energy integration and efficiency strategies. Results indicate that 70% of studies highlight emissions reduction and cost savings as key NZEB benefits, while 60% cite high storage costs and 45% report grid integration challenges. Only 30% of studies address policy dependency, revealing a research gap. Effective measures include passive solar design (up to 25% heating load reduction), high-performance envelopes (15–40% energy savings), and smart energy management (10–20% efficiency gains). Persistent obstacles involve high upfront costs, renewable variability, and rapid technological obsolescence. Achieving NZEB viability requires integrating energy-efficient design, affordable renewables, advanced storage, and coherent policy frameworks to accelerate the transition toward a sustainable, NZEB-built environment.

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Cite This Study

Alfadil et al. (2026) studied this question.

synapsesocial.com/papers/699d3fe6de8e28729cf64b64https://doi.org/10.3390/buildings16040879
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