Need Help Evaluating PVT Performance?
PVT efficiency depends on more than a single number.
Solis PVT helps evaluate suitable PVT solutions based on:
- application requirements;
- temperature levels;
- heat pump integration;
- system design.
Published: March 28, 2026
Last Modified:August 5, 2026
The efficiency of a photovoltaic thermal (PVT) collector is different from the efficiency of a conventional photovoltaic module.
A PV module is mainly evaluated by how much solar energy it converts into electricity.
A PVT collector produces two useful outputs:
Therefore, PVT performance must be evaluated from a combined energy perspective.
The key question is not only:
How much electricity can a PVT collector generate?
It is also:
How much total useful energy can be recovered from the same solar area?
Efficiency describes how effectively a PVT collector converts incoming solar radiation into useful energy.
For a PVT collector, useful output includes:
Generated by photovoltaic cells.
Recovered through the thermal absorber.
The general energy relationship is:
Solar Energy Input
↓
PVT Collector
↓
Electricity Output
+
Thermal Energy OutputUnlike PV systems, PVT efficiency cannot be represented by one single value without defining what output is being measured.
Electrical efficiency represents the percentage of solar radiation converted into electricity.
Formula:
Electrical Efficiency
=
Electrical Output
÷
Solar Energy InputThe electrical performance of a PVT collector depends on:
PV cells generally operate less efficiently at higher temperatures.
During operation:
Higher Temperature
↓
Lower PV Electrical PerformanceThe thermal component of PVT can remove heat from the PV module.
This creates a potential benefit:
Thermal efficiency describes how much solar energy is converted into useful heat.
Formula:
Thermal Efficiency
=
Useful Thermal Output
÷
Solar Energy InputPVT performance depends strongly on operating temperature.
Advantages:
Advantages:
Challenges:
One of the unique characteristics of PVT is that it provides two energy outputs.
A simplified total efficiency concept:
Total Efficiency
=
Electrical Efficiency
+
Thermal EfficiencyHowever, this value should be interpreted carefully.
Electrical energy and thermal energy have different values depending on:
Two systems may have similar total energy output but different practical value.
High thermal output.
Low-temperature heat.
Suitable for:
Higher temperature output.
Lower electrical performance.
Suitable for:
Therefore:
The highest efficiency number does not always represent the best system solution.
A collector does not operate independently.
The final value depends on:
Collector
↓
Hydraulic System
↓
Heat Pump / Storage
↓
Energy DemandA high-performance collector connected to an unsuitable system may deliver poor overall results.
Different PVT designs have different performance characteristics.
Important factors include:
Temperature is one of the most important parameters.
Lower operating temperatures often benefit:
Higher temperatures may improve:
Performance depends on:
A collector performing well in one climate may have different results in another.
Thermal energy must be useful.
Important considerations:
PVT performance depends on:
A common mistake is comparing PVT products only by one efficiency value.
This can be misleading.
Efficiency depends on:
Different test methods may produce different results.
A collector designed for:
may optimize:
A collector designed for:
may optimize:
Both can be suitable for different applications.
Primary output:
Solar Energy
↓
ElectricityEvaluation focus:
Primary outputs:
Solar Energy
↓
Electricity
+
HeatEvaluation focus:
| Parameter | PV | PVT |
|---|---|---|
| Electrical efficiency | Main indicator | Important indicator |
| Thermal efficiency | Not applicable | Important indicator |
| Total energy utilization | Limited to electricity | Electricity + heat |
| Heat recovery | No | Yes |
Reliable PVT evaluation requires standardized testing methods.
Important evaluation areas include:
Measured through:
Measured through:
Evaluation may include:
For professional project selection, performance should be based on:
This article applies:
The IEA SHC Task 60 framework identifies PVT performance evaluation and application suitability as important aspects of PVT system development.
PVT can achieve higher total solar energy utilization because it produces both electricity and heat.
However, electrical efficiency alone may not always be higher.
There is no single efficiency value for all PVT collectors.
Performance depends on:
Reducing PV operating temperature can improve electrical performance.
The actual improvement depends on system design and operating conditions.
It depends on the application.
For heat pump systems, thermal performance may be highly important.
For electricity-focused applications, electrical output may be the priority.
Compare:
PVT efficiency depends on more than a single number.
Solis PVT helps evaluate suitable PVT solutions based on: