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arxiv: 2606.27512 · v1 · pith:2BIGLHGHnew · submitted 2026-06-25 · ❄️ cond-mat.mtrl-sci

Mapping the Growth of Two-Dimensional π-Conjugated Polymers on Au(111): Organometallic Intermediates and Edge Terminations

Pith reviewed 2026-06-29 01:33 UTC · model grok-4.3

classification ❄️ cond-mat.mtrl-sci
keywords Kagome latticeson-surface synthesisUllmann couplingorganometallic intermediatesAu(111)scanning tunneling microscopyatomic force microscopypi-conjugated polymers
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The pith

Gold adatoms incorporate into the growing Kagome polymer lattice as organometallic intermediates on Au(111), while most edges stay brominated up to 250 °C.

A machine-rendered reading of the paper's core claim, the machinery that carries it, and where it could break.

The paper tracks the on-surface Ullmann coupling of tribromotrioxaazatriangulene molecules into covalent Kagome-lattice films using STM and high-resolution AFM. It identifies previously unseen organometallic states in which gold adatoms sit inside the polymer chains during growth. Most polymer edges remain terminated by bromine even at elevated temperatures, and many of those edges also bind gold adatoms next to the bromine. The observations indicate that leftover bromine can stabilize the edges against the gold surface and steer the assembly toward ordered lattices.

Core claim

Using scanning tunneling microscopy and atomic force microscopy together with density functional theory, we observe unreported organometallic intermediate states in which Au adatoms are incorporated within the growing polymer lattice. A majority of polymer edges remain brominated up to 250 °C, and a large number of edges are bonded to Au adatoms that are coordinated to an adjacent bromine atom. These findings suggest that residual bromine stabilizes polymer edges to Au adatoms and thereby influences the growth pathways that produce ordered Kagome polymer lattices.

What carries the argument

Organometallic intermediates formed by Au adatoms incorporated inside the polymer lattice during on-surface Ullmann coupling

Load-bearing premise

The STM and AFM images are correctly interpreted as showing Au adatoms inside the polymer chains and Br atoms stabilizing the edges, which depends on the accuracy of the DFT structure assignments.

What would settle it

Atomic-resolution images or calculations that show no Au atoms inside the polymer chains at the reported growth stages would falsify the claim of organometallic intermediates.

Figures

Figures reproduced from arXiv: 2606.27512 by Chang Wan Kang, Dmytro F. Perepichka, Ekaterina D. Ulyanov, Manuel Gonz\'alez Lastre, Pablo Pou, Peter Grutter, Rub\'en P\'erez, Simon W. Briesenick, Wyatt A. Behn.

Figure 1
Figure 1. Figure 1: P2TANG polymer formation and imaging. (a) Polymerization reaction of TB￾TANG into P2TANG. (b,c) 100 nm STM images of the growing polymer. (d) 10 nm STM image with molecular overlay. The arrow points to a bromine atom. Imaging parameters: (b) Vs = -500 mV, It = 50 pA; (c) -300 mV, 50 pA; (d) 300 mV, 30 pA. Film growth pa￾rameters: (b) Ts = 180 ◦C, Tc = 140 ◦C, td = 1.75 min; (c) 210 ◦C, 140 ◦C, 3.5 min; (d)… view at source ↗
Figure 2
Figure 2. Figure 2: High-resolution (a) STM (Vs = -300 mV, It = 50 pA. The orange arrow indicates a surface-adsorbed bromine atom while the white arrow points to a bromine still bonded to the polymer edge) and (b) AFM (A = 55 pm, Q = 190,000) scans, scale bars 1 nm (originally reported in Ref. [8], reprocessed here). (c) Profiles along the lines plotted in (a,b). Ts = 210 ◦C, Tc = 120 ◦C. Simulation geometries for a partially… view at source ↗
Figure 3
Figure 3. Figure 3: (a–c) Histograms showing the evolution of each termination grouping with varying [PITH_FULL_IMAGE:figures/full_fig_p009_3.png] view at source ↗
Figure 4
Figure 4. Figure 4: Examples of featureless edges (grouped as type 3) not stabilized by surface atoms. [PITH_FULL_IMAGE:figures/full_fig_p011_4.png] view at source ↗
Figure 5
Figure 5. Figure 5: STM images (50 nm) showing partial coverage for the same [PITH_FULL_IMAGE:figures/full_fig_p012_5.png] view at source ↗
Figure 6
Figure 6. Figure 6: Quantitative comparison of network regularity using computational scoring meth [PITH_FULL_IMAGE:figures/full_fig_p014_6.png] view at source ↗
read the original abstract

Kagome lattices provide an exciting space for the exploration of graphene-like $\pi$-conjugated molecular systems with flat bands. Using heterotriangulene-derived precursors, along with an on-surface Ullmann coupling process, makes growing polymers with Kagome lattices accessible and straightforward. Here, we use scanning tunneling microscopy alongside high-resolution atomic force microscopy to examine the evolution of tribromotrioxaazatriangulene on Au(111) into ordered, covalent films. Using density functional theory and scanning probe methods, we find previously unreported organometallic intermediate states involving Au adatoms incorporated within the growing polymer lattice. We also find that a majority of polymer edges remain brominated up to 250 $^{\circ}$C and a large number of edges bonded to Au adatoms coordinated to an adjacent bromine atom. These observations suggest that residual bromine could play a role in stabilizing the polymer edges to Au adatoms and thereby influence the growth pathways that lead to ordered Kagome polymer lattices.

Editorial analysis

A structured set of objections, weighed in public.

Desk editor's note, referee report, simulated authors' rebuttal, and a circularity audit. Tearing a paper down is the easy half of reading it; the pith above is the substance, this is the friction.

Referee Report

1 major / 0 minor

Summary. The manuscript examines the on-surface Ullmann coupling of tribromotrioxaazatriangulene precursors on Au(111) to form 2D π-conjugated polymers with Kagome lattices. Combining STM, high-resolution AFM, and DFT calculations, the authors report previously unobserved organometallic intermediate states featuring Au adatoms incorporated into the growing covalent polymer lattice, along with the observation that a majority of polymer edges remain brominated or coordinated to Au adatoms (with an adjacent Br) up to 250 °C, proposing that residual bromine stabilizes edges and influences ordering.

Significance. If the image assignments and structural interpretations are robust, the work supplies concrete mechanistic details on organometallic intermediates and edge chemistry during 2D polymer growth. This is relevant for controlling defect formation and achieving long-range order in Kagome-lattice materials, whose flat-band electronic properties are of interest. The multi-technique approach (STM/AFM + DFT) is a strength for an experimental observation paper.

major comments (1)
  1. [Abstract and DFT modeling of intermediates] Abstract and results on organometallic intermediates: the central claim that bright protrusions and apparent heights correspond to Au adatoms incorporated within the covalent lattice (rather than surface adatoms, tip effects, or perimeter-only coordination) rests on joint STM/AFM + DFT assignment. No explicit comparison is described against chemically plausible alternative models (e.g., Br-terminated edges without lattice Au or purely perimeter Au coordination), which is required to establish that the proposed geometry uniquely reproduces the experimental contrast and heights.

Simulated Author's Rebuttal

1 responses · 0 unresolved

We thank the referee for their careful reading and constructive feedback on our manuscript. We address the single major comment below and will incorporate the requested comparisons in a revised version.

read point-by-point responses
  1. Referee: [Abstract and DFT modeling of intermediates] Abstract and results on organometallic intermediates: the central claim that bright protrusions and apparent heights correspond to Au adatoms incorporated within the covalent lattice (rather than surface adatoms, tip effects, or perimeter-only coordination) rests on joint STM/AFM + DFT assignment. No explicit comparison is described against chemically plausible alternative models (e.g., Br-terminated edges without lattice Au or purely perimeter Au coordination), which is required to establish that the proposed geometry uniquely reproduces the experimental contrast and heights.

    Authors: We agree that explicit side-by-side comparisons to alternative models would strengthen the structural assignment. Our DFT calculations (including simulated STM/AFM images) were performed on the lattice-incorporated Au-adatom geometry and reproduce the experimental bright protrusions and apparent heights inside the polymer units. Perimeter-only coordination or purely Br-terminated edges without lattice Au do not account for the internal contrast observed in both experiment and simulation. However, we did not include these alternative models as direct comparisons in the original submission. In the revised manuscript we will add DFT calculations and simulated images for (i) Br-terminated edges without lattice Au and (ii) perimeter-only Au coordination, allowing direct comparison of contrast and heights to the experimental data and to the proposed lattice-incorporated model. revision: yes

Circularity Check

0 steps flagged

No circularity: experimental imaging and DFT assignment paper

full rationale

The paper reports STM/AFM observations of polymer growth on Au(111) with DFT used for structure assignment. No equations, derivations, fitted parameters renamed as predictions, or self-citation chains appear in the provided text or abstract. Claims rest on direct experimental data and standard computational modeling without any reduction of outputs to inputs by construction. This matches the default case of a self-contained observational study.

Axiom & Free-Parameter Ledger

0 free parameters · 1 axioms · 0 invented entities

The central claim rests on the interpretation of STM/AFM images and DFT support for assigning organometallic structures and edge bonding; no free parameters or new entities are introduced beyond standard experimental and computational techniques.

axioms (1)
  • standard math Standard assumptions in DFT calculations for adsorbate structures on metal surfaces
    Invoked to support assignment of observed features to Au adatoms and brominated edges.

pith-pipeline@v0.9.1-grok · 5759 in / 1230 out tokens · 34351 ms · 2026-06-29T01:33:55.718857+00:00 · methodology

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Works this paper leans on

157 extracted references · 87 canonical work pages

  1. [1]

    NPG Asia Mater

    Cerium oxide nanoparticle: A remarkably versatile rare earth nanomaterial for biological applications , author =. NPG Asia Mater. , volume =. 2014 , publisher =. doi:10.1038/am.2013.88 , url =

  2. [2]

    Scientific Reports , volume =

    Untangling the biological effects of cerium oxide nanoparticles: the role of surface valence states , author =. Scientific Reports , volume =. 2015 , publisher =. doi:10.1038/srep15613 , url =

  3. [3]

    2013 , type =

    Catalysis by Ceria and Related Materials , keywords =. 2013 , type =

  4. [4]

    5987-6041

    Montini, T. and Melchionna, M. and Monai, M. and Fornasiero, P. Fundamentals and catalytic applications of CeO _2 -based materials. Chemical Reviews. 2016. doi:10.1021/acs.chemrev.5b00603 , pages = "5987-6041", url=

  5. [5]

    C. T. Campbell and C. H. F. Peden. Oxygen vacancies and catalysis on ceria surfaces. Science. 2005

  6. [6]

    Wendt and P

    S. Wendt and P. T. Sprunger and E. Lira and G. K. H. Madsen and Z. Li and J. . Hansen and J. Matthiesen and A. Blekinge-Rasmussen and E. L gsgaard and B. Hammer and F. Besenbacher. The role of interstitial sites in the Ti 3d defect state in the band gap of titania. Science. 2008

  7. [7]

    Park and J

    S. Park and J. M. Vohs and R. J. Gorte. Direct oxidation of hydrocarbons in a solid-oxide fuel cell. Nature. 2000

  8. [8]

    G. A. Deluga and J. R. Salge and L. D. Schmidt and X. E. Verykios. Renewable Hydrogen from Ethanol by Autothermal Reforming. Science. 2004

  9. [9]

    M. S. Dresselhaus and I. L. Thomas. Alternative energy technologies. Nature. 2001

  10. [10]

    Raymond J. Gorte. Ceria in catalysis: From automotive applications to the water–gas shift reaction. AIChE Journal. 2010

  11. [11]

    J. A. Rodriguez and S. Ma and P. Liu and J. Hrbek and J. Evans and M. P \'e rez. Activity of CeO _2 _x and TiO _x nanoparticles grown on Au (111) in the water-gas whift reaction. Science. 2007

  12. [12]

    2019 , note =

    A decade of ceria based solar thermochemical H _2 O/CO _2 splitting cycle , journal =. 2019 , note =. doi:https://doi.org/10.1016/j.ijhydene.2018.04.080 , url =

  13. [13]

    F. J. Giessibl , doi =. A direct method to calculate tip-sample forces from frequency shifts in frequency-modulation atomic force microscopy , volume =. Appl. Phys. Lett. , month =

  14. [14]

    Mechanism of high-resolution STM/AFM imaging with functionalized tips , author =. Phys. Rev. B , volume =. 2014 , publisher =. doi:10.1103/PhysRevB.90.085421 , url =

  15. [15]

    R. J. Chem. Phys. , volume =. 2020 , month = mar, issn =

  16. [16]

    ChemCatChem , volume =

    Zhou, Qin and Akber, Humaira and Zhao, Aidi and Yang, Fan and Liu, Zhi , title =. ChemCatChem , volume =. doi:https://doi.org/10.1002/cctc.202300318 , url =. https://chemistry-europe.onlinelibrary.wiley.com/doi/pdf/10.1002/cctc.202300318 , abstract =

  17. [17]

    Insight into the Adsorption of Water on the Clean CeO _

    Fern\'. Insight into the Adsorption of Water on the Clean CeO _. J. Phys. Chem. C , volume =. 2012 , doi =. https://doi.org/10.1021/jp212605g , abstract =

  18. [18]

    The Electric Field of CO Tips and Its Relevance for Atomic Force Microscopy , journal =

    Ellner, Michael and Pavliček, Niko and Pou, Pablo and Schuler, Bruno and Moll, Nikolaj and Meyer, Gerhard and Gross, Leo and Per. The Electric Field of CO Tips and Its Relevance for Atomic Force Microscopy , journal =. 2016 , doi =

  19. [19]

    Imaging of surface oxygen atoms and their defect structures on CeO _

    Kenichi Fukui and Yoshimichi Namai and Yasuhiro Iwasawa , keywords =. Imaging of surface oxygen atoms and their defect structures on CeO _. Appl. Surf. Sci. , volume =. 2002 , issn =. doi:https://doi.org/10.1016/S0169-4332(01)00917-5 , url =

  20. [20]

    Nanotechnology , abstract =

    Gritschneder, S and Namai, Y and Iwasawa, Y and Reichling, M , title =. Nanotechnology , abstract =. 2005 , month =. doi:10.1088/0957-4484/16/3/008 , url =

  21. [23]

    Gritschneder, Sebastian and Reichling, Michael , Title =. J. Phys. Chem. C , Year =. doi:10.1021/jp076994y , ISSN =

  22. [24]

    Atomic Force Microscopy for Molecular Structure Elucidation , journal =

    Gross, Leo and Schuler, Bruno and Pavli. Atomic Force Microscopy for Molecular Structure Elucidation , journal =. doi:10.1002/anie.201703509 , url =

  23. [25]

    and Albrecht, Peter M

    Mullins, David R. and Albrecht, Peter M. and Chen, Tsung-Liang and Calaza, Florencia C. and Biegalski, Michael D. and Christen, Hans M. and Overbury, Steven H. , title =. J. Phys. Chem. C , volume =. 2012 , doi =. https://doi.org/10.1021/jp306444h , abstract =

  24. [26]

    Oyabu and P

    N. Oyabu and P. Pou and Y. Sugimoto and P. Jelinek and M. Abe and S. Morita and R. P\' e rez and O. Custance. Single Atomic Contact Adhesion and Dissipation in Dynamic Force Microscopy. 2006

  25. [27]

    Sugimoto and M

    Y. Sugimoto and M. Abe and S. Hirayama and N. Oyabu and O. Custance and S. Morita. Atom inlays performed at room temperature using atomic force microscopy. Nat. Mater. 2005

  26. [28]

    Sugimoto and P

    Y. Sugimoto and P. Pou and O. Custance and P. Jelinek and M. Abe and R. P \'e rez and S. Morita. Complex Patterning by Vertical Interchange Atom Manipulation Using Atomic Force Microscopy. Science. 2008

  27. [29]

    Sugimoto, Yoshiaki and Onoda, Jo , title =. App. Phys. Lett. , volume =. 2019 , month =. doi:10.1063/1.5112062 , url =

  28. [30]

    Epitaxial growth of continuous CeO _

    F. Epitaxial growth of continuous CeO _. Thin Solid Films , volume =. 2008 , issn =. doi:https://doi.org/10.1016/j.tsf.2007.11.013 , url =

  29. [31]

    Evidence of subsurface oxygen vacancy ordering on reduced CeO _2 (111) , Journal =

    Torbr. Evidence of subsurface oxygen vacancy ordering on reduced CeO _2 (111) , Journal =. 2007 , Volume =. doi:10.1103/PhysRevLett.99.056101 , Article-Number =

  30. [32]

    Morphology of step structures on CeO _2 (111) , Journal =

    Torbr. Morphology of step structures on CeO _2 (111) , Journal =. 2008 , Volume =. doi:10.1063/1.2969790 , Article-Number =

  31. [33]

    Hydrogen bonded trimesic acid networks on Cu(111) reveal how basic chemical properties are imprinted in HR-AFM images

    Zahl, Percy and Yakutovich, Aliaksandr V and Ventura-Mac\'. Hydrogen bonded trimesic acid networks on Cu(111) reveal how basic chemical properties are imprinted in HR-AFM images. Nanoscale. 2021. doi:10.1039/D1NR04471K

  32. [34]

    Ventura-Macias, Emiliano and Romero-Mu. Appl. Surf. Sci. , mendeley-groups =. doi:10.1016/j.apsusc.2023.157558 , issn =

  33. [35]

    and Furthm\"uller, J

    Kresse, G. and Furthm\"uller, J. , journal =. Efficient iterative schemes for. 1996 , doi =

  34. [36]

    Projector augmented-wave method , author =. Phys. Rev. B , volume =. 1994 , doi =

  35. [37]

    Perdew, John P and Burke, Kieron and Ernzerhof, Matthias , doi =. Phys. Rev. Lett. , mendeley-groups =

  36. [38]

    Grimme, Stefan and Antony, Jens and Ehrlich, Stephan and Krieg, Helge , issn =. J. Chem. Phys. , number =

  37. [39]

    Stefan and Jelinek, Pavel , isbn =

    Hapala, Prokop and Temirov, Ruslan and Tautz, F. Stefan and Jelinek, Pavel , isbn =. Phys. Rev. Lett. , number =

  38. [40]

    Krej. Phys. Rev. B , mendeley-groups =. doi:10.1103/PhysRevB.95.045407 , eprint =

  39. [41]

    Molecular Interactions on Two-Dimensional Materials , chapter =

    Shaotang Song and Jie Su and Xinnan Peng and Xinbang Wu and Mykola Telychko , title =. Molecular Interactions on Two-Dimensional Materials , chapter =. 2021 , doi =

  40. [42]

    and Hamann, D

    Tersoff, J. and Hamann, D. R. , doi =. Phys. Rev. B , mendeley-groups =

  41. [43]

    Julian , doi =

    Chen, C. Julian , doi =. Phys. Rev. B , mendeley-groups =

  42. [44]

    Julian , doi =

    Chen, C. Julian , doi =. J. Vacuum Sci. Technol. A , keywords =

  43. [45]

    High-Resolution Molecular Orbital Imaging Using a p -Wave

    Gross, Leo and Moll, Nikolaj and Mohn, Fabian and Curioni, Alessandro and Meyer, Gerhard and Hanke, Felix and Persson, Mats , journal =. High-Resolution Molecular Orbital Imaging Using a p -Wave. 2011 , publisher =. doi:10.1103/PhysRevLett.107.086101 , url =

  44. [46]

    Proceedings of the Institution of Mechanical Engineers, Conference Proceedings , mendeley-groups =

    Williamson, J B P , doi =. Proceedings of the Institution of Mechanical Engineers, Conference Proceedings , mendeley-groups =

  45. [47]

    Giessibl

    F.J. Giessibl. Atomic Resolution of the Silicon (111)-( 7 7 ) Surface by Atomic Force Microscopy. Science. 1995

  46. [48]

    M. A. Lantz and H. J. Hug and R. Hoffmann and P. J. A. van Schendel and P. Kappenberger and S. Martin and A. Baratoff and H.-J. G \"u ntherodt. Quantitative Measurement of Short-Range Chemical Bonding Forces. Science. 2001

  47. [49]

    Sugimoto and P

    Y. Sugimoto and P. Pou and M. Abe and P. Jelinek and R. P \'e rez and S. Morita and O. Custance. Chemical identification of individual surface atoms by atomic force microscopy. Nature. 2007

  48. [50]

    Repulsive interaction and contrast inversion in noncontact atomic force microscopy imaging of adsorbates , author =. Phys. Rev. B , volume =. 2008 , month =. doi:10.1103/PhysRevB.77.195410 , url =

  49. [51]

    and Foster, Adam S

    Enevoldsen, Georg H. and Foster, Adam S. and Christensen, Mona C. and Lauritsen, Jeppe V. and Besenbacher, Flemming , journal =. Noncontact atomic force microscopy studies of vacancies and hydroxyls of. 2007 , month =. doi:10.1103/PhysRevB.76.205415 , url =

  50. [52]

    Nanotechnology , abstract =

    Bechstein, Ralf and González, César and Schütte, Jens and Jelínek, Pavel and Pérez, Rubén and Kühnle, Angelika , title =. Nanotechnology , abstract =. 2009 , month =. doi:10.1088/0957-4484/20/50/505703 , url =

  51. [53]

    Electron Localization in Defective Ceria Films: A Study with Scanning-Tunneling Microscopy and Density-Functional Theory , author =. Phys. Rev. Lett. , volume =. 2011 , month =. doi:10.1103/PhysRevLett.106.246801 , url =

  52. [54]

    Lustemberg, P. G. and Pan, Y. and Shaw, B.-J. and Grinter, D. and Pang, Chi and Thornton, G. and P\'erez, Rub\'en and Ganduglia-Pirovano, M. V. and Nilius, N. , journal =. Diffusion Barriers Block Defect Occupation on Reduced. 2016 , month =. doi:10.1103/PhysRevLett.116.236101 , url =

  53. [55]

    Science , year =

    Electron localization determines defect formation on ceria substrates , author =. Science , year =

  54. [56]

    Surface chemistry on a polarizable surface: Coupling of CO with KTaO _3 (001) , journal =

    Zhichang Wang and Michele Reticcioli and Zdenek Jakub and Igor Sokolov\'. Surface chemistry on a polarizable surface: Coupling of CO with KTaO _3 (001) , journal =. 2022 , doi =. https://www.Science.org/doi/pdf/10.1126/sciadv.abq1433 , abstract =

  55. [57]

    Johanna I. H. Stoichiometric reconstruction of the Al _2 O _3 (0001) surface , journal =. 2024 , doi =. https://www.Science.org/doi/pdf/10.1126/Science.adq4744 , abstract =

  56. [58]

    and Allan, Michael and Yang, Hyun Jin and Salcedo, Agust’n and Murgida, Gustavo E

    Grinter, David C. and Allan, Michael and Yang, Hyun Jin and Salcedo, Agust’n and Murgida, Gustavo E. and Shaw, Bobbie-Jean and Pang, Chi L. and Idriss, Hicham and Ganduglia-Pirovano, M. Ver—nica and Thornton, Geoff , title =. Angewandte Chemie International Edition , volume =. doi:https://doi.org/10.1002/anie.202101771 , url =. https://onlinelibrary.wiley...

  57. [59]

    and Ithnin, Roslinda and Pang, Chi L

    Grinter, David C. and Ithnin, Roslinda and Pang, Chi L. and Thornton, Geoff , title =. J. Phys. Chem. C , volume =. 2010 , doi =. https://doi.org/10.1021/jp102895k , abstract =

  58. [60]

    Stetsovych, Oleksandr and Todorovi. Nat. Commun. , volume =. 2015 , month = jun, issn =

  59. [61]

    Submolecular Imaging by Noncontact Atomic Force Microscopy with an Oxygen Atom Rigidly Connected to a Metallic Probe , journal =

    M. Submolecular Imaging by Noncontact Atomic Force Microscopy with an Oxygen Atom Rigidly Connected to a Metallic Probe , journal =. 2016 , doi =

  60. [62]

    Gross, F

    Leo Gross and Fabian Mohn and Nikolaj Moll and Peter Liljeroth and Gerhard Meyer , title =. Science , volume =. 2009 , doi =. https://www.Science.org/doi/pdf/10.1126/Science.1176210 , abstract =

  61. [63]

    Quest for a pristine unreconstructed

    Sokolovi. Quest for a pristine unreconstructed. Phys. Rev. B , volume =. 2021 , month =. doi:10.1103/PhysRevB.103.L241406 , url =

  62. [64]

    Standardization of Chemically Selective Atomic Force Microscopy for Metal Oxide Surfaces , journal =

    Wiesener, Philipp and F. Standardization of Chemically Selective Atomic Force Microscopy for Metal Oxide Surfaces , journal =. 2024 , doi =

  63. [65]

    Nature NANOTECHNOLOGY , Year =

    Moenig, Harry and Amirjalayer, Saeed and Timmer, Alexander and Hu, Zhixin and Liu, Lacheng and Arado, Oscar Diaz and Cnudde, Marvin and Strassert, Cristian Alejandro and Ji, Wei and Rohlfing, Michael and Fuchs, Harald , Title =. Nature NANOTECHNOLOGY , Year =. doi:10.1038/s41565-018-0104-4 , ISSN =

  64. [66]

    Ultrahigh-resolution imaging of water networks by atomic force microscopy

    Shiotari, Akitoshi and Sugimoto, Yoshiaki. Ultrahigh-resolution imaging of water networks by atomic force microscopy. Nat. Commun. 2017

  65. [67]

    Peng, Jinbo and Guo, Jing and Hapala, Prokop and Cao, Duanyun and Ma, Runze and Cheng, Bowei and Xu, Limei and Ondracek, Martin and Jelinek, Pavel and Wang, Enge and Jiang, Ying , Title =. Nat. Commun , Year =. doi:10.1038/s41467-017-02635-5 , Pages =

  66. [68]

    Science , Year =

    Tian, Ye and Hong, Jiani and Cao, Duanyun and You, Sifan and Song, Yizhi and Cheng, Bowei and Wang, Zhichang and Guan, Dong and Liu, Xinmeng and Zhao, Zhengpu and Li, Xin-Zheng and Xu, Li-Mei and Guo, Jing and Chen, Ji and Wang, En-Ge and Jiang, Ying , Title =. Science , Year =. doi:10.1126/Science.abo0823 , ISSN =

  67. [69]

    Nature , Year =

    Hong, Jiani and Tian, Ye and Liang, Tiancheng and Liu, Xinmeng and Song, Yizhi and Guan, Dong and Yan, Zixiang and Guo, Jiadong and Tang, Binze and Cao, Duanyun and Guo, Jing and Chen, Ji and Pan, Ding and Xu, Li-Mei and Wang, En-Ge and Jiang, Ying , Title =. Nature , Year =. doi:10.1038/s41586-024-07427-8 , EarlyAccessDate =

  68. [70]

    Science , Year =

    Wu, Da and Zhao, Zhengpu and Lin, Bo and Song, Yizhi and Qi, Jiajie and Jiang, Jian and Yuan, Zifeng and Cheng, Bowei and Zhao, Mengze and Tian, Ye and Wang, Zhichang and Wu, Muhong and Bian, Ke and Liu, Kai-Hui and Xu, Li-Mei and Zeng, Xiao Cheng and Wang, En-Ge and Jiang, Ying , Title =. Science , Year =. doi:10.1126/Science.ado1544 , ISSN =

  69. [71]

    and Hafner, J

    Kresse, G. and Hafner, J. , title =. Phys. Rev. B , volume =. 1993 , month = jan, publisher =

  70. [72]

    and Hafner, J

    Kresse, G. and Hafner, J. , title =. Phys. Rev. B , volume =. 1994 , month = may, publisher =

  71. [73]

    and Furthm

    Kresse, G. and Furthm. Phys. Rev. B , volume =. 1996 , month = oct, publisher =

  72. [74]

    and Furthm

    Kresse, G. and Furthm. Comput. Mater. Sci. , volume =. 1996 , month = jul, issn =

  73. [75]

    and Joubert, D

    Kresse, G. and Joubert, D. , title =. Phys. Rev. B , volume =. 1999 , month = jan, publisher =

  74. [76]

    Payne, M. C. and Teter, M. P. and Allan, D. C. and Arias, T. A. and Joannopoulos, J. D. , title =. Rev. Mod. Phys. , volume =. 1992 , month = oct, publisher =

  75. [77]

    Bl. Phys. Rev. B , volume =. 1994 , month = dec, publisher =

  76. [78]

    Dudarev, S. L. and Botton, G. A. and Savrasov, S. Y. and Humphreys, C. J. and Sutton, A. P. , title =. Phys. Rev. B , volume =. 1998 , month = jan, publisher =

  77. [79]

    Henkelman, Graeme and Uberuaga, Blas P. and J. J. Chem. Phys. , volume =. 2000 , month = dec, issn =

  78. [80]

    Pan, Yi and Nilius, Niklas and Freund, Hans-Joachim and Paier, Joachim and Penschke, Christopher and Sauer, Joachim , title =. Phys. Rev. Lett. , volume =. 2013 , month = nov, publisher =

  79. [81]

    and Pack, James D

    Monkhorst, Hendrik J. and Pack, James D. , title =. Phys. Rev. B , volume =. 1976 , month = jun, publisher =

  80. [82]

    Grimme, Stefan and Ehrlich, Stephan and Goerigk, Lars , title =. J. Comput. Chem. , volume =. 2011 , month = may, issn =

Showing first 80 references.