Abstract
A new approach to developing an intrinsic betavoltaic battery is demonstrated by incorporating radiation-emitting isotopes, such as tritium, directly into the perovskite materials enabling direct power harvesting. The estimated power density for tritiated perovskite is 33.15 mW g-1 compared to 3.25 mW g-1 with conventional planar source-device structure. The long-term energy release is predicted at 73.8 kWh/kg of tritiated methylammonium lead triiodide (tritiated MAPbI3 or CT3NT3PbI3) over 12.32 years. A CT3NT3PbI3 crystal was synthesized using 4.44 mCi of tritiated water. Tritium incorporation into the final perovskite device was confirmed, with an uptake ratio of ( 2.1±0.2 )% from tritiated water to methylammonium iodide (MAI) precursor. However, the fabricated devices did not exhibit rectifying behavior, possibly due to the unpolished surface. The I–V curve also exhibited significant hysteresis. A key challenge identified for increasing the tritium uptake ratio is to develop a high concentration of tritiated water.
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Maier, A., Lorie Lopez, J., Giglio, D., Pan, L., Hlinka, V., Co, A. C., & Cao, L. R. (2025). Tritiated Perovskites: Experimental Insights for Tritium Betavoltaic Batteries. IEEE Transactions on Nuclear Science, 72(4), 1637–1643. https://doi.org/10.1109/TNS.2025.3546037
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