Leonardo Merola, Vipin Singh, Mareike Schäfer, E. Cortese, Karthikeyen Natarajan Pugazhendhi, Alexander Weiß, Lanting Qian, Shashwat Singh, Sebastian L. Benz, Joachim Sann, Anja Bielefeld, Burak Aktekin, Felix H. Richter, Linda F. Nazar, Jürgen Janek
Dual-electrolyte solid-state batteries (SSBs) that combine sulfide separators with an (oxy)halide in the positive electrode offer a promising configuration. However, most cell designs rely on additional (oxy)halide interlayers between the separator and the positive electrode. This leaves the intrinsic reactivity at the sulfide-separator|(oxy)halide positive electrode interface largely unexplored. Here, we systematically investigate this interface using Li 6 PS 5 Cl and six (oxy)halide solid electrolytes across three cell configurations. We show that the triple-phase boundary between the active material and two solid electrolytes is intrinsically detrimental, leading to rapid performance decay regardless of the (oxy)halide chemistry. High-capacity retention is only achieved when this boundary is avoided. Ex situ and operando X-ray photoelectron spectroscopy (XPS) reveal the formation of localized degradation products, including metal sulfides and elemental sulfur/oxidized sulfide compounds, alongside sulfur gas evolution at ∼4.3 V vs. Li⁺/Li. These findings identify triple-phase boundary instability as a key degradation mechanism and provide design guidelines for stable dual-electrolyte architectures.