Research Article10.1016/j.susc.2026.122986First principle study on adsorption of SiCl4 molecule on α-Fe(100) surfaceJul 01, 2026Surface ScienceYansong Ren + 6 more +6CiteListenSave
Research Article110.1016/j.susc.2026.122944C6N8 carbon-nitride monolayer as a sensitive SERS-active sensor and carrier for methimazole: DFT, solvent and docking insightsMay 01, 2026Surface ScienceJamelah S Al-Otaibi + 4 more +4CiteListenSave
Research Article10.1016/j.susc.2025.122874Real-space imaging and X-ray photoelectron spectroscopy of nitrogen segregation structures on Fe(100)Mar 01, 2026Surface ScienceMarkus Soldemo + 1 more +1· High resolution STM and XPS analysis of segregated N structures on Fe(100). · Detection of c(2 × 2)-N and stripe domain structures. · Analysis of N rich and N poor domain boundaries. Surface nitrogen structures on Fe(100) obtained by bulk-to-surface nitrogen segregation are studied using a combination of high-resolution X-ray photoelectron spectroscopy (XPS) and real-space imaging using scanning tunneling microscopy (STM). The core-level XPS N 1s results show one sharp peak, suggesting that the N atoms are mainly located in one site. The binding energy is consistent with the literature value of the Fe(100)/c(2 × 2)-N structure, for which the nitrogen atoms reside in four-fold hollow sites. Furthermore, the STM-images show regions of well-ordered Fe(100)/c(2 × 2)-N structure and regions with a high density of anti-phase domain boundaries. Regions with narrow stripe-like, 3 N atoms wide, anti-phase c(2 × 2)-N domains were observed. The anti-phase domain boundaries between the stripe-shaped domains have higher N coverage than within large well-ordered Fe(100)/c(2 × 2)-N domains.Read moreCiteListenSave
Research Article10.1016/j.susc.2025.122907First-principles investigation on ethanol oxidation reaction over PdCu alloy surfaces for direct ethanol fuel cell applicationsMar 01, 2026Surface SciencePatrik Chandra + 4 more +4CiteListenSave
Research Article310.1016/j.susc.2025.122871A promising direct Z-scheme GeC/PtSe2 van der Waals heterostructure as a high-efficiency photocatalyst for overall water splittingFeb 01, 2026Surface ScienceYan Zhang + 2 more +2CiteListenSave
Research Article10.1016/j.susc.2026.122964Interlayer Covalent Interaction of Graphene Enhancing the Formation of C₂ Products in CO₂ Reduction Reaction Electrocatalyzed by Cu Single Atom CatalystsFeb 01, 2026Surface ScienceMenchengzhen Hao + 2 more +2CiteListenSave
Front Matter10.1016/j.susc.2026.122950Preface - Young Investigator 2025Feb 01, 2026Surface ScienceHans-Peter SteinrueckCiteListenSave
Research Article10.1016/j.susc.2026.122952First principles study on the electronic structure and photocatalytic performance of MoS2 monolayer via phosphorus and halogen (F, Cl, Br, and I) co-dopingFeb 01, 2026Surface ScienceYi Liu + 2 more +2CiteListenSave
Research Article10.1016/j.susc.2025.122869SO2 oxidation with H2O on low surface coverage Pt(111): A density functional theory investigationFeb 01, 2026Surface ScienceTheunis Nel + 3 more +3CiteListenSave
Research Article10.1016/j.susc.2025.122841A first principles study on the adsorbate-adsorbate interactions on the CdTe(111) surface with Cd, Te, Zn, and Se adatomsJan 01, 2026Surface ScienceNicholas A Szaro + 2 more +2CiteListenSave