TY - GEN A1 - Kot, Małgorzata A1 - Henkel, Karsten A1 - Schmeißer, Dieter T1 - Internal chemical potential in mixed covalent-ionic photosensitive systems T2 - Journal of Vacuum Science & Technology A N2 - The internal chemical potential Γ of mixed covalent-ionic systems represents the potential differences between the covalent and the ionic intrinsic defect states located within the ionic gap. It is the key parameter to control the carrier densities, the stability regimes, and the photosensitive properties of materials. In this work, we describe first the quantitative analysis of the carrier densities in dependence on the internal potential Nπ(Γ) based on the common features of the electronic structure of mixed covalent-ionic materials. Subsequently, this method is applied on two mixed covalent-ionic materials, i.e., formamidinium lead triiodide and gallium oxide, as representatives of the respective families of perovskites (halides) and transparent conducting oxide thin films. Based on this analysis, the carrier densities as well as the photosensitivity mechanisms and the related specific properties of these materials in dependence on their internal chemical potential are discussed. KW - Polarons KW - Transport properties KW - Rectifier KW - Electrical properties and parameters KW - Perovskites KW - Thin films KW - Chemical compounds KW - Chemical potential KW - Photodissociation Y1 - 2025 U6 - https://doi.org/10.1116/6.0004179 SN - 0734-2101 VL - 43 (2025) IS - 1 SP - 1 EP - 9 PB - American Vacuum Society ER - TY - GEN A1 - Kot, Małgorzata A1 - Gawlińska‐Nęcek, Katarzyna A1 - Pożarowska, Emilia A1 - Henkel, Karsten A1 - Schmeißer, Dieter T1 - Photosensitivity and carrier densities of perovskite solar absorbers T2 - Advanced science N2 - Dark and light current–voltage characteristics of perovskite solar absorbers are analyzed in terms of their carrier densities. The analysis reveals p‐type large polarons as a dominant carrier type in the investigated perovskite solar cells. The mechanism causing photosensitivity is attributed to the dissociation (and pairing) of bipolarons to large polarons (and vice versa) that are controlled by the internal potential Γ. As an example, the polaron concept is tested for a formamidinium lead triiodide perovskite solar cell. The individual steps of the data analysis are demonstrated and determine the ionicity factor of this perovskite film, quantify the density of the large polarons, and predict the gain and loss of photo‐induced carriers. It is deduced that a reversible light‐on/off operation can only occur when the bias voltage never exceeds a critical value of the internal potential. The results gained in this study suggest that the novel analysis can be successively applied on different hybrid perovskite materials, too. KW - Bipolarons KW - Ionicity factor KW - Large polarons KW - Perovskite solar cells Y1 - 2025 UR - https://advanced.onlinelibrary.wiley.com/doi/epdf/10.1002/advs.202412711 U6 - https://doi.org/10.1002/advs.202412711 SN - 2198-3844 VL - 12 IS - 16 SP - 1 EP - 8 PB - Wiley CY - Hobken, New Jersey ER -