“…The improvement of mobility with doping is inconsistent with the traditional transport scenario, in which the carrier mobility usually decreases with doping due to the increased impurity scattering . Recently, similar abnormal phenomena have been observed in several other thermoelectric systems, and different scenarios have been proposed to explain this elusive behavior, such as modulation doping, , tuning the carrier scattering mechanism, and improving the grain boundary connectivity by a second phase. − In the modulation doping picture, the charge carriers transfer from the doped grains to the undoped grains, which enhances the mobility in comparison to uniform doping samples, but the mobility is still lower than that of the undoped samples. , Shuai et al reported that, by codoping with Te and Nb, the carrier scattering mechanism of Mg 3 Sb 2 -based materials can be tuned from ionization scattering to mixed scattering (between ionization and acoustic phonon scattering), which can improve the mobility from 19 to 77 cm 2 V –1 s –1 . It is worth noting that, in the Mg 3 Sb 2 case, the carrier concentration decreases after doping, wheareas, in our V-doped MoS 2 samples, the carrier concentration increases with doping.…”