Breaking structural symmetry in two-dimensional layered Janus materials can result in enhanced new phenomena and create additional degrees of piezoelectric responses. In this study, we theoretically design a series of Janus monolayers HfGeZH (Z = N, P, As) and investigate their structural characteristics, crystal stability, piezoelectric responses, electronic features, and carrier mobility using first-principles calculations. Phonon dispersion analysis confirms that HfGeZH monolayers are dynamically stable and their mechanical stability is also confirmed through the Born-Huang criteria. It is demonstrated that while HfGeNH is a semiconductor with a large bandgap of 3.50 eV, HfGePH and HfGeAsH monolayers have narrower bandgaps being 1.07 and 0.92 eV, respectively. When the spin-orbit coupling is included, large spin-splitting energy is found in the electronic bands of HfGeZH. Janus HfGeZH monolayers can be treated as piezoelectric semiconductors with the coexistence of both in-plane and out-of-plane piezoelectric responses. In particular, HfGeZH monolayers exhibit ultra-high electron mobilities up to 6.40 × 10 cm V s (HfGeAsH), indicating that they have potential for various applications in nanoelectronics.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11302187PMC
http://dx.doi.org/10.1039/d4na00304gDOI Listing

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