Andrea Montón Vicente, Jose Quilez Alburquerque, Lorenzo Gramolini, Lucía Morillo Victorero, Cristina García Iriepa, Marco Marazzi, David Díaz Díaz, María Alba
The lack of robust and tunable redox reporters continues to hinder the development of high-performance electrochemical biosensors. In this work, we present a combined computational and experimental investigation of a family of water-compatible Os(II) complexes as pH-insensitive alternatives to the gold-standard methylene blue (MB). We systematically engineered, synthesized, and characterized, both computationally and electrochemically, four Os(II) polypyridyl complexes. We achieved a broad formal potential (E0') range from 0.0 to +0.34 V vs Ag/AgCl, while maintaining fast, quasi-reversible one-electron behavior. These trends were reproduced by theoretical calculations and linked to systematic changes in the highest occupied molecular orbital (HOMO) energy/metal-ligand charge distribution. Covalent immobilization of the complexes onto carboxylated self-assembled monolayers on gold via amide coupling underscored their suitability as redox reporters in electrochemical biosensors. The redox potential remained pH-invariant from acidic to basic conditions, in contrast to the pronounced shifts observed for MB-derived probes. Stability under rapid and continuous electrochemical pulses by square-wave voltammetry was also assessed, with complexes 1, 2, and 4 displaying high stability after 200 scans in buffer compared to complex 3 and MB-based probes. Collectively, these results provide design rules and establish Os(II) complexes as modular redox reporters with on-demand features for advanced electrochemical sensors, including ratiometric and multiplexed sensing.