Home >Courses >Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

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Home >Courses >Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

11/27/2025

Registration closes 11/27/2025
Mentor Based

Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

Perovskite–Silicon Tandems: Reliable by Design, Bankable in the Field

  • Mode: Virtual / Online
  • Type: Mentor Based
  • Level: Moderate
  • Duration: 3 Days
  • Starts: 27 November 2025
  • Time: 5:30 PM IST

About This Course

Perovskite–silicon tandem PV promises higher efficiencies and lower energy costs than conventional silicon, but its real-world success depends on proven reliability, clear bankability, and system-level integration. This program explores how tandem devices behave under operating conditions, how they impact balance-of-system design and performance, and how technical risks translate into investor confidence—supporting their transition from lab breakthroughs to dependable, financeable solar assets.

Aim

To critically examine the reliability, bankability, and balance-of-system implications of perovskite–silicon tandem photovoltaic (PV) technologies, with a focus on translating high-efficiency cell performance into robust, low-risk, and financeable real-world solar projects.

Workshop Objectives

  • To provide an integrated view of perovskite–silicon tandem PV from cell/module design to utility-scale plant deployment.
  • To map key reliability and qualification requirements for tandems and position them against existing IEC/UL standards and test regimes.
  • To establish clear links between lab/field reliability data and bankability metrics such as yield, degradation, warranties, and LCOE.
  • To highlight BOS and plant-integration implications of tandem technology, including inverters, layout, protection, monitoring, and safety codes.
  • To build a common language between R&D, project development, and finance teams for evaluating tandem PV risk and opportunity.
  • To equip participants with practical templates (test matrix, risk register, mini bankability model, BOS KPIs) that can be adapted to real projects.

Workshop Structure

📅 Day 1 – Reliability & Qualification (Perovskite–Silicon Tandems)

  • Tandem stack basics: optical/electrical coupling, tunnel junctions, interlayers
  • Failure modes: ion migration, interdiffusion, UV/thermal/moisture stress, PID/LeTID, seal/encapsulant durability
  • Test regimes & pathways to standards: DH/TC/HF/UV, light-soak, outdoor exposure → IEC 61215/61730 alignment
  • Metrology essentials: junction-resolved IV, EQE/spectral mismatch, degradation (%/yr) estimation
  • Hands-on: Draft a reliability test matrix & risk register for a sample tandem BOM (stresses, pass/fail, sampling, data logging)

📅 Day 2 – Bankability, Yield & Finance

  • Bankability pillars: certification, field data, warranties, O&M assumptions, insurer/lender diligence
  • Energy assessment: spectra & AOI impacts, temp coeffs, soiling/bifacial effects, uncertainty stacking
  • Financials: LCOE drivers (CAPEX/BOS, yield, degradation, availability), PPA/insurance considerations
  • Reliability → revenue bridge: mapping test results to yield-loss & risk narratives
  • Hands-on: Build a mini bankability model (spectral correction + degradation) → LCOE sensitivity & warranty scenarios (one-page memo)

📅 Day 3 – BOS & Plant Integration

  • Inverters/MPPT: tandem IV shape, wider MPPT windows, mismatch risk; DC:AC sizing & clipping
  • Layout/trackers: spectral & AOI behavior, albedo choices, thermal effects; wiring/protection (fuses, AFCI, rapid shutdown)
  • Interconnect & standards: commissioning/acceptance tests, SCADA/performance analytics, safety codes
  • O&M: IV-curve scanning, condition-based cleaning, fault taxonomy, warranty evidence
  • Hands-on: Quick BOS calc—select inverter MPPT window & DC:AC ratio for a tandem string, estimate clipping/losses, and define monitoring KPIs (yield, PR, degradation)

Who Should Enrol?

  • PV cell/module R&D engineers working on perovskite, silicon, or tandem architectures
  • Reliability & test engineers in PV manufacturing, certification labs, or QA teams
  • Project developers, IPPs, EPCs & asset managers involved in utility-scale solar projects
  • Technical advisors, lenders, insurers & investors evaluating PV technology bankability
  • Policy, standards & regulatory professionals focused on solar qualification and safety codes
  • Faculty, PhD/PG students in renewable energy, materials, or power systems; final-year UG students are welcome if they have prior exposure to basic PV concepts (IV curves, efficiency, LCOE).

Important Dates

Registration Ends

11/27/2025
IST 4:30 PM

Workshop Dates

11/27/2025 – 11/29/2025
IST 5:30 PM

Workshop Outcomes

  • Understand the architecture and failure modes of perovskite–silicon tandem stacks, and how these differ from conventional silicon PV.
  • Design a reliability and qualification test matrix for tandem modules aligned with IEC 61215/61730 and related standards.
  • Interpret junction-resolved IV/EQE data, estimate degradation rates (%/year), and link these to field performance expectations.
  • Evaluate the bankability of tandem PV projects by connecting reliability evidence, yield assessments, and financial metrics (LCOE, PPA, warranties).
  • Quantify key yield drivers for tandem plants, including spectral effects, temperature behavior, soiling, and DC:AC sizing/clipping.
  • Specify BOS and plant-integration requirements (inverters/MPPT windows, layout/trackers, wiring, SCADA, safety codes) tailored to tandem technology.
  • Develop practical tools such as a tandem reliability risk register, a mini bankability model, and BOS/monitoring KPIs that can be adapted to real projects.

Meet Your Mentor(s)

Bede Adazie

AI Engineer

Others

more


Fee Structure

Student

₹1999 | $60

Ph.D. Scholar / Researcher

₹2999 | $70

Academician / Faculty

₹3999 | $80

Industry Professional

₹5999 | $100

What You’ll Gain

  • Live & recorded sessions
  • e-Certificate upon completion
  • Post-workshop query support
  • Hands-on learning experience

Join Our Hall of Fame!

Take your research to the next level with NanoSchool.

Publication Opportunity

Get published in a prestigious open-access journal.

Centre of Excellence

Become part of an elite research community.

Networking & Learning

Connect with global researchers and mentors.

Global Recognition

Worth ₹20,000 / $1,000 in academic value.

Need Help?

We’re here for you!


(+91) 120-4781-217

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Home >Courses >Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

NSTC Logo
Home >Courses >Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

12/08/2025

Registration closes 12/08/2025
Mentor Based

Perovskite–Silicon Tandem PV: Reliability, Bankability, and Balance-of-System Impacts

Perovskite–Silicon Tandems: Reliable by Design, Bankable in the Field

  • Mode: Virtual / Online
  • Type: Mentor Based
  • Level: Moderate
  • Duration: 3 Days
  • Starts: 8 December 2025
  • Time: 5:30 PM IST

About This Course

Perovskite–silicon tandem PV promises higher efficiencies and lower energy costs than conventional silicon, but its real-world success depends on proven reliability, clear bankability, and system-level integration. This program explores how tandem devices behave under operating conditions, how they impact balance-of-system design and performance, and how technical risks translate into investor confidence—supporting their transition from lab breakthroughs to dependable, financeable solar assets.

Aim

To critically examine the reliability, bankability, and balance-of-system implications of perovskite–silicon tandem photovoltaic (PV) technologies, with a focus on translating high-efficiency cell performance into robust, low-risk, and financeable real-world solar projects.

Workshop Objectives

  • To provide an integrated view of perovskite–silicon tandem PV from cell/module design to utility-scale plant deployment.
  • To map key reliability and qualification requirements for tandems and position them against existing IEC/UL standards and test regimes.
  • To establish clear links between lab/field reliability data and bankability metrics such as yield, degradation, warranties, and LCOE.
  • To highlight BOS and plant-integration implications of tandem technology, including inverters, layout, protection, monitoring, and safety codes.
  • To build a common language between R&D, project development, and finance teams for evaluating tandem PV risk and opportunity.
  • To equip participants with practical templates (test matrix, risk register, mini bankability model, BOS KPIs) that can be adapted to real projects.

Workshop Structure

📅 Day 1 – Reliability & Qualification (Perovskite–Silicon Tandems)

  • Tandem stack basics: optical/electrical coupling, tunnel junctions, interlayers
  • Failure modes: ion migration, interdiffusion, UV/thermal/moisture stress, PID/LeTID, seal/encapsulant durability
  • Test regimes & pathways to standards: DH/TC/HF/UV, light-soak, outdoor exposure → IEC 61215/61730 alignment
  • Metrology essentials: junction-resolved IV, EQE/spectral mismatch, degradation (%/yr) estimation
  • Hands-on: Draft a reliability test matrix & risk register for a sample tandem BOM (stresses, pass/fail, sampling, data logging)

📅 Day 2 – Bankability, Yield & Finance

  • Bankability pillars: certification, field data, warranties, O&M assumptions, insurer/lender diligence
  • Energy assessment: spectra & AOI impacts, temp coeffs, soiling/bifacial effects, uncertainty stacking
  • Financials: LCOE drivers (CAPEX/BOS, yield, degradation, availability), PPA/insurance considerations
  • Reliability → revenue bridge: mapping test results to yield-loss & risk narratives
  • Hands-on: Build a mini bankability model (spectral correction + degradation) → LCOE sensitivity & warranty scenarios (one-page memo)

📅 Day 3 – BOS & Plant Integration

  • Inverters/MPPT: tandem IV shape, wider MPPT windows, mismatch risk; DC:AC sizing & clipping
  • Layout/trackers: spectral & AOI behavior, albedo choices, thermal effects; wiring/protection (fuses, AFCI, rapid shutdown)
  • Interconnect & standards: commissioning/acceptance tests, SCADA/performance analytics, safety codes
  • O&M: IV-curve scanning, condition-based cleaning, fault taxonomy, warranty evidence
  • Hands-on: Quick BOS calc—select inverter MPPT window & DC:AC ratio for a tandem string, estimate clipping/losses, and define monitoring KPIs (yield, PR, degradation)

Who Should Enrol?

  • PV cell/module R&D engineers working on perovskite, silicon, or tandem architectures
  • Reliability & test engineers in PV manufacturing, certification labs, or QA teams
  • Project developers, IPPs, EPCs & asset managers involved in utility-scale solar projects
  • Technical advisors, lenders, insurers & investors evaluating PV technology bankability
  • Policy, standards & regulatory professionals focused on solar qualification and safety codes
  • Faculty, PhD/PG students in renewable energy, materials, or power systems; final-year UG students are welcome if they have prior exposure to basic PV concepts (IV curves, efficiency, LCOE).

Important Dates

Registration Ends

12/08/2025
IST 4:30 PM

Workshop Dates

12/08/2025 – 12/10/2025
IST 5:30 PM

Workshop Outcomes

  • Understand the architecture and failure modes of perovskite–silicon tandem stacks, and how these differ from conventional silicon PV.
  • Design a reliability and qualification test matrix for tandem modules aligned with IEC 61215/61730 and related standards.
  • Interpret junction-resolved IV/EQE data, estimate degradation rates (%/year), and link these to field performance expectations.
  • Evaluate the bankability of tandem PV projects by connecting reliability evidence, yield assessments, and financial metrics (LCOE, PPA, warranties).
  • Quantify key yield drivers for tandem plants, including spectral effects, temperature behavior, soiling, and DC:AC sizing/clipping.
  • Specify BOS and plant-integration requirements (inverters/MPPT windows, layout/trackers, wiring, SCADA, safety codes) tailored to tandem technology.
  • Develop practical tools such as a tandem reliability risk register, a mini bankability model, and BOS/monitoring KPIs that can be adapted to real projects.

Fee Structure

Student

₹1999 | $60

Ph.D. Scholar / Researcher

₹2999 | $70

Academician / Faculty

₹3999 | $80

Industry Professional

₹5999 | $100

What You’ll Gain

  • Live & recorded sessions
  • e-Certificate upon completion
  • Post-workshop query support
  • Hands-on learning experience

Join Our Hall of Fame!

Take your research to the next level with NanoSchool.

Publication Opportunity

Get published in a prestigious open-access journal.

Centre of Excellence

Become part of an elite research community.

Networking & Learning

Connect with global researchers and mentors.

Global Recognition

Worth ₹20,000 / $1,000 in academic value.

Need Help?

We’re here for you!


(+91) 120-4781-217

★★★★★
Green Catalysts 2024: Innovating Sustainable Solutions from Biomass to Biofuels

Good Presentation

MIKESON V S
★★★★★
Build Intelligent AI Apps with Retrieval-Augmented Generation (RAG)

None

Alexandros Karakikes
★★★★★
AI for Environmental Monitoring and Sustainablility

Great mentor!

Mladen Kulev
★★★★★
AI-Driven Design of Smart Polymer Composites: From Concept to Manufacturing

Well presented.

Daniel Argilashki

View All Feedbacks →

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