Benchmarking was performed using three representative photoswitches - 2-cyano-3-(3,4-dimethoxyphenyl)norbornadiene (NBD1)22, azobenzene23, and ethyl-3-(2-methoxyphenyl)bicyclo[2.2.2]octa-2,5-diene-2-carboxylate (BOD)19 comparing the data from the automated workflow with previously reported results. Control experiments show that continuous UV-lamp irradiation converts approximately 10% of NBD1 within 10 minutes (Figure 2)17. Under standard measurement conditions, each spectrum is recorded in less than 0.5 s, corresponding to <0.01% conversion, demonstrating that lamp exposure has a negligible effect on quantum yield measurements. Unlike conventional approaches that photoconvert samples externally and transfer them to a spectrometer, the automated setup confines small sample volumes within a thermostat-controlled, irradiated chamber, minimizing concentration fluctuations and ensuring accurate kinetic measurements. Thermal rate constants determined at five temperatures (60 °C, 65 °C, 70 °C, 75 °C, 80 °C) were used for Eyring analysis to extract ΔH‡ and ΔS‡ (Table 6).24
The used derivative of norbornadiene, 2-cyano-3-(3,4-dimethoxyphenyl)norbornadiene (Figure 3 a) was first reported in literature18 and is referred to here simply as NBD1. The absorbance spectrum of NBD1 shows minimal overlap with its quadricyclane (QC1) isomer (Figure 3 b)17, allowing simplification of equation (1) by neglecting photo-induced back-conversion (QC1 → NBD1). QC1 also exhibits a thermal half-life of approximately 30 days at room temperature, which is much slower than the photoisomerization timescale under the experimental conditions. Consequently, because the QC1 thermal half-life (27 days at 25 °C) is several orders of magnitude longer than the irradiation timescale (minutes), thermal back-conversion can be neglected (Figure 4)17. This results in a simplified model where only the forward reaction is considered, and assuming a monochromatic light source, the differential equation can be solved analytically to give the quantum yields (Table 2)17.
The bicyclooctadiene (BOD) derivative studied here (Figure 5), ethyl-3-(2-methoxyphenyl)bicyclo[2.2.2]octa-2,5-diene-2-carboxylate, has been previously reported in the literature19. The photoproduct absorbs outside the spectral region of the parent compound, simplifying measurement interpretation. When the photoproduct spectrum is unknown, it is often assumed at low conversion that it does not absorb, which accelerates data collection but may introduce an unknown error. Unlike the NBD–QC system, the shorter half-life of the photoisomer (TCO) leads to a very fast back-conversion at room temperature, requiring inclusion of both forward photo-isomerization and reverse thermal steps in the kinetic model. Because the rate equation cannot be solved analytically, numerical fitting is performed by minimizing residuals (Figure 6, Table 4)17, typically taking a few seconds on a standard computer, compared to sub-second fitting for analytical models neglecting thermal reversion. Thermal back-conversion was further measured at four temperatures to determine the half-life and thermodynamic parameters (Table 8). At 25 °C, the BOD half-life was measured to be 63 s, in good agreement with the previously reported 79.8 s. Eyring and Arrhenius analyses are shown in Figure 717.
Azobenzene has a long thermal half-life at room temperature (>6 days), allowing thermal back-conversion to be neglected. The cis-azobenzene photoproduct absorbs minimally in the region of the trans-isomer (ε340nm^trans ≈ 12,500 M⁻1 cm⁻1; ε340nm^cis ≈ 200 M⁻1 cm⁻1), minimizing spectral interference24. Since the molar absorptivity of the cis isomer at 340 nm is two orders of magnitude smaller than that of the trans isomer, its contribution to the absorbance signal is negligible at low conversion. At low conversion, photo-induced back-conversion has a negligible impact, permitting simplification of the kinetic model by excluding reverse photoisomerization and thermal terms (Figure 8, Table 5)17. While measuring the photostationary state would allow determination of both forward and backward quantum yields, this study focuses on the forward reaction. The measured thermal half-life of 6.78 days aligns well with the literature value of 7.34 days, and the corresponding Eyring and Arrhenius analyses are shown in Figure 917, with thermodynamic parameters summarized in Table 917.
In addition to benchmarking with established photoswitches, 2-cyano-3-(3-quinoline)norbornadiene (NBD2) was synthesized and studied using the automated setup (Figure 10). The photoconversion results presented in this manuscript are new, showcasing the capability of the system to characterize the photochemical behavior of novel compounds under controlled and reproducible irradiation conditions. The solvent used was toluene, and the concentration of the solution was 5.4 x 10-5 M. Using a 340 nm LED, an overall quantum yield of 11 % was obtained (Figure 11, Table 3). Since QC2 absorbs at the irradiation wavelength of 340 nm, both the parent compound and the photoproduct compete for the same photons, meaning the effective photon flux driving each species evolves during the reaction. To avoid systematic errors in the quantum yield, an optimized fit for this overlapping absorption between NBD2 and QC2 at the irradiation wavelength was formulated, explicitly including the product contribution. The corrected fit uses a kinetic model that accounts for changes in the concentrations of the parent compound and photoproduct during irradiation, while considering that both absorb at 340 nm. Application of the optimized fitting procedure resulted in a corrected overall quantum yield of 11.6 %.
Within this framework, the measured photon flux corresponds to the total incident photon flux entering the sample and is converted into the absorbed photon flux using the time-dependent total absorbance of the system. The Beer-Lambert law is used to determine the fraction of incident photons that are absorbed, after which the absorbed photon flux is divided between NBD2 and QC2 in proportion to their respective contributions to the total absorbance at each time point. Consequently, as the product forms, it captures an increasing fraction of the photons, progressively reducing the light available for further conversion of the parent compound.
Because the concentrations of NBD2 and QC2 change over time and directly affect how much light is absorbed, the system cannot be described with a simple analytical equation. Instead, the kinetic model is solved numerically. In practice, a trial value of the quantum yield is chosen, the reaction is simulated over time, and the resulting absorbance curve is compared to the experimental data. The quantum yield is then adjusted and the simulation repeated until the best match between calculated and measured absorbance is obtained. This corresponds to a global fit of the full absorbance-time dataset, rather than fitting individual points independently. To run this model, the molar absorptivity of QC2 at 340 nm must be known. This parameter is determined separately using the Beer-Lambert law, based on the absorbance measured after irradiation at 340 nm. Once determined, the molar absorptivity of QC2 is treated as a fixed input parameter and is not adjusted during the fitting procedure.

Figure 1: Schematic of the photoswitch characterization platform. The automated system is built upon a multi-component flow system. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 2: Effect of continuous UV-lamp exposure on norbornadiene (NBD1). After 10 min of irradiation, NBD undergoes ~10% conversion, whereas individual spectra recorded in <0.5 s result in negligible (<0.01%) conversion. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 3: NBD1–QC1 photoswitching and UV–Vis spectra. a) Schematic representation of the norbornadiene–quadricyclane (NBD1–QC1) photoswitch system. b) UV-Vis absorption spectra of NBD1 and QC1. The figure shows the NBD1–QC1 photoswitch system, including a schematic of the light-induced NBD1-to-QC1 conversion and the corresponding UV–Vis spectra, highlighting the absorption changes between NBD1 and QC1. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 4: Illustration of the negligible contribution of thermal and photo-induced back-conversion for the NBD1–QC1 pair, due to minimal spectral overlap and a long QC half-life. Effect of including the thermal back-reaction on the quantum yield fit at 25 °C. Neglecting the thermal back-reaction gave a quantum yield of 67%, whereas accounting for it increased the value slightly to 68%. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 5: BOD–TCO photoswitching and UV–Vis spectral changes. a) Schematic of the bicyclooctadiene–tetracyclooctane (BOD–TCO) photoswitch system. b) UV-Vis spectra of BOD and its photostationary state (TCO) after irradiation at 308 nm. The figure depicts the BOD–TCO photoswitch system, showing a schematic of the light-induced BOD-to-TCO conversion and the corresponding UV–Vis absorption spectra, which illustrate the spectral changes upon formation of the TCO-rich photostationary state after 308 nm irradiation. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 6: Illustrations of quantum yield fitting with and without inclusion of the thermal back-conversion term. Comparison between the analytical fit neglecting thermal back-conversion (QY = 13.8%) and the numerical fit including thermal back-conversion (QY = 15.1%, k = 5.5497×10−3 s−1 at 20 °C) for BOD, highlighting the differences in the obtained kinetics. Please click here to view a larger version of this figure.

Figure 7: Eyring and Arrhenius plots for BOD. The plots were used to determine thermal half-lives and thermodynamic parameters at three temperatures. The rate constants were fitted using both the Arrhenius and Eyring equations. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 8: Azobenzene photoisomerization and UV–Vis spectral changes. a) Schematic of azobenzene photoisomerization. b) UV-Vis spectra of trans-azobenzene and the photostationary state (cis-azobenzene enriched) after 340 nm irradiation. The figures illustrate azobenzene photoisomerization, showing a schematic of the trans-to-cis switching process and the corresponding UV–Vis absorption spectra, highlighting the spectral changes upon formation of the cis-rich photostationary state after 340 nm irradiation. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 9: Eyring and Arrhenius plots for azobenzene. The plots were used to determine thermal half-lives and thermodynamic parameters at three temperatures. The rate constants were fitted using both the Arrhenius and Eyring equations. This figure is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17 Please click here to view a larger version of this figure.

Figure 10: Photoisomerization and absorbance spectra of NBD2. a) Schematic representation of the NBD2/QC2 photoisomerization. b) UV-Vis spectra of NBD2 and QC2 after 340 nm irradiation. Please click here to view a larger version of this figure.

Figure 11: Quantum yield fitting for NBD2 with product absorption optimized. a) Example quantum yield fit of NBD2 upon irradiation at 340 nm, following the time-resolved absorbance at 330 nm. The rate of the thermal back-conversion (k = 9.1×10−6 s−1) and the product absorption at the irradiation wavelength (ε ^NBD2 = 9210 M−1 cm−1, ε ^QC2 = 1900 M−1 cm−1) is included in this numerical fit to give an optimized QY of 11.6% (blue line) at 25 °C compared to the analytical fit that gives a QY value of 13.3% (red line). b) Residuals for the optimized quantum yield fit including the product absorption. Please click here to view a larger version of this figure.

Figure 12: Eyring and Arrhenius plots for NBD2. The plots were used to determine thermal half-lives and thermodynamic parameters at five temperatures. The rate constants were fitted using both the Arrhenius and Eyring equations. Please click here to view a larger version of this figure.

Figure 13. 1H NMR spectra of NBD2/QC2. a) NMR spectrum of NBD2 in CD2Cl2 with numbered atoms corresponding to the assignment in the experimental section. b) NMR spectra of NBD2 in toluene-d8 and after 1 hour of irradiation with 340 nm LED that allows full conversion to QC2. The characteristic NBD peaks are shown in pink and these disappear upon irradiation, and the residual solvent peaks are highlighted in yellow. Please click here to view a larger version of this figure.
| Category | Parameter | Example / Notes |
| Sample | Identity of photoswitch | NBD, BOD, Azobenzene |
| Concentration | e.g., 4.1 × 10-5 M |
| Solvent | e.g., acetonitrile, toluene |
| LED / Irradiation | Wavelength | Available wavelengths: 280 nm, 310 nm, 340 nm, 365 nm, 410 nm, 455 nm |
| Operating current / Power | 600 mA, 600, 600 mA, 1000 mA, 1200 mA, 1200 mA, respectively. |
| Photon flux | Calibrated value corresponding to LED and settings |
| Measurement interval | By default it is 1 second per spectrum |
| Spectroscopic / Analysis | Analysis wavelength | More or less equal to the LED wavelength used |
| Zero-point wavelength | The point where there is no more absorption (usually around 500 nm) |
| Number of points for fitting | Usually around 10, depending on how much data points are available |
| Temperature | Forward reaction | Usually room temperature (25 °C) |
| Back-conversion | Depends a lot on the molecule (e.g., 70 °C) |
| Kinetic analysis | At least three different temperatures required during back-conversion |
| Flow System | Flow rate | By default it is 1 mL/min |
| Flushing volume | 200 μL between measurements |
Table 1: User-dependent parameters. The table summarizes the key initial parameters that must be set by the user for automated photoswitch characterization, including sample concentration, solvent, LED wavelength and power, measurement wavelength, temperature, flow rate, and software settings, which are essential for ensuring reproducible and accurate photochemical measurements.
| Wavelength of irradiation | Number of measurements | Experimental value |
| 340 nm | 7 | 0.676 ± 0.028 |
| 365 nm | 2 | 0.689 ± 0.022 |
Table 2: Quantum yields of NBD1/QC1 in toluene at 25 °C. Quantum yields of NBD1 measured at two irradiation wavelengths in toluene at 25 °C. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
| Wavelength of irradiation | Number of measurements | Experimental value |
| 340 nm | 5 | 0.109 ± 0.017 |
Table 3: Quantum yields of NBD2/QC2 in toluene at 25 °C (uncorrected fit). Quantum yields of NBD2 measured at one irradiation wavelength in toluene at 25 °C.
| Wavelength of irradiation | Number of measurements | Experimental value | Quant et al. (2022) |
| 308 nm | 2 | 0.146 ± 0.007 | 0.1443 ± 0.0004 |
Table 4: Quantum yield of BOD in acetonitrile at 20 °C (308 nm). Quantum yield of BOD measured at 308 nm irradiation, performed at 20 °C in acetonitrile. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
| Wavelength of irradiation | Number of measurements | Experimental value | Ladanyi et al. (2017) |
| 340 nm | 3 | 0.148 ± 0.003 | |
| 334 nm | 6 | | 0.155 ± 0.006 |
Table 5: Quantum yields for trans–cis azobenzene photoisomerization. Quantum yields for trans-to-cis azobenzene photoisomerization at 340 nm in acetonitrile at 25 °C, compared with literature values measured in methanol at 334 nm. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
| Property | Value |
| half-life (25°C) | 27 days |
| ∆H‡ | 115.039935 kJ/mol |
| ∆S‡ | 16.1 J/mol K |
| ∆G‡ (25°C) | 117.974 kJ/mol |
Table 6: Thermodynamic parameters for NBD1. The table presents key kinetic and thermodynamic parameters for the thermal isomerization of NBD1, including its half-life at 25 °C, along with the associated enthalpy, entropy, and Gibbs free energy of activation, which together describe the compound’s thermal stability and isomerization behavior. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
| Property | Value |
| half-life (25°C) | 0.884 days |
| A | 2.15e+10 1/s |
| ∆H‡ | 82.998240 kJ/mol |
| ∆S‡ | -56.3 J/mol K |
| ∆G‡ (25°C) | 68.22 kJ/mol |
Table 7: Thermodynamic parameters for NBD2. The table presents key kinetic and thermodynamic parameters for the thermal isomerization of NBD2, including its half-life at 25 °C, Arrhenius pre-exponential factor, and the associated enthalpy, entropy, and Gibbs free energy of activation, which together describe the compound’s thermal stability and isomerization behavior.
| Property | Value |
| half-life (25°C) | 63 seconds |
| A | 7.10e+13 1/s |
| ∆H‡ | 87.824995 kJ/mol |
| ∆S‡ | 12.2 J/mol K |
| ∆G‡ (25°C) | 90.240 kJ/mol |
Table 8: Thermodynamic parameters for BOD. The table presents key kinetic and thermodynamic parameters for the thermal isomerization of a BOD, including its half-life at 25 °C, Arrhenius pre-exponential factor, and the associated enthalpy, entropy, and Gibbs free energy of activation, which together describe the compound’s thermal stability and isomerization behavior. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
| Property | Value |
| half-life (25°C) | 6.796 days |
| A | 3.99e+10 1/s |
| ∆H‡ | 91.452630 kJ/mol |
| ∆S‡ | -51.6 J/mol K |
| ∆G‡ (25°C) | 94.347 kJ/mol |
Table 9: Thermodynamic parameters for azobenzene. The table presents key kinetic and thermodynamic parameters for the thermal isomerization of an azobenzene, including its half-life at 25 °C, Arrhenius pre-exponential factor, and the associated enthalpy, entropy, and Gibbs free energy of activation, which together describe the compound’s thermal stability and isomerization behavior. This table is reproduced from reference 17 with permission from the Royal Society of Chemistry, under CC-BY open access license.17
Supplementary File 1: Quantum yield experiment. The quantum yield experiment program is the GUI that allows the user to carry out the photoconversion reaction. A reference spectrum of the solvent in use must be made or uploaded prior to the start of the experiment (for baseline correction). The absorption spectrum of the molecule can be monitored here over time. The program is able to back-convert the molecule to its parent state, if necessary, i.e. through heating (for a T-type photoswitch) or with irradiation at a different wavelength (for a P-type photoswitch).Please click here to download this file.
Supplementary File 2: Photonflux calculator. The photonflux calculator program is used to calibrate the photon flux of available LEDs. The photon flux was determined from the optical power measured with a calibrated photodiode sensor and converted to photon flux using the LED wavelength.Please click here to download this file.
Supplementary File 3: Photonflux calibration table. The photonflux calibration table holds the data collected from the photonflux calculator.Please click here to download this file.
Supplementary File 4: Quantum yield analysis. The quantum yield analysis program allows the user to determine either the quantum yield of a reaction or, alternatively, the corresponding photon flux. Before starting the analysis, the user must provide either the solution concentration or the extinction coefficient. If thermally promoted back-conversion occurs during the experiment, the associated rate constants can also be determined; these values are subsequently used to calculate the half-life of the molecule.Please click here to download this file.
Supplementary File 5: Half-life analysis. The half-life analysis program uses the rate constants (k) at a minimum of three different temperatures to generate Arrhenius and Eyring fits, enabling the extraction of the corresponding kinetic and thermodynamic parameters.Please click here to download this file.