Sujith's research has been in the field of
thermo-acoustic instability. He demonstrated that low-amplitude aperiodic pressure fluctuations, or combustion noise, are deterministic and chaotic. He modelled the state of intermittency as the intermediate dynamical state as turbulent thermo-acoustic systems transition from the state of combustion noise to the state of thermo-acoustic instability. He suggested that combustion noise exhibits multifractality, which vanishes with the onset of instability. His analogy of the onset of oscillatory instabilities to
Bose-Einstein condensation has provided universal scaling laws for various systems. Sujith's introduction of complex networks to thermo-acoustics has shown structural changes in network topology during transitions from combustion noise to instability, aiding in early detection of such transitions. His research has involved a variety of topics relevant in thermo-acoustic systems such as the chimera states, R-tipping, synchronisation theory,
amplitude death, partial amplitude death, and phase flip
bifurcation. ==Honours and awards ==