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<titleInfo><title>Domain-wall/metal-electrode injection barrier in lithium niobate: Fowler-Nordheim tunneling fits best</title></titleInfo>


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<name type="personal">
  <namePart type="given">Manuel</namePart>
  <namePart type="family">Zahn</namePart>
  <role><roleTerm type="text">author</roleTerm> </role></name>
<name type="personal">
  <namePart type="given">Elke</namePart>
  <namePart type="family">Beyreuther</namePart>
  <role><roleTerm type="text">author</roleTerm> </role></name>
<name type="personal">
  <namePart type="given">Iuliia</namePart>
  <namePart type="family">Kiseleva</namePart>
  <role><roleTerm type="text">author</roleTerm> </role></name>
<name type="personal">
  <namePart type="given">Julius</namePart>
  <namePart type="family">Ratzenberger</namePart>
  <role><roleTerm type="text">author</roleTerm> </role></name>
<name type="personal">
  <namePart type="given">Michael</namePart>
  <namePart type="family">Rüsing</namePart>
  <role><roleTerm type="text">author</roleTerm> </role><identifier type="local">22501</identifier><description xsi:type="identifierDefinition" type="orcid">0000-0003-4682-4577</description></name>
<name type="personal">
  <namePart type="given">Lukas M.</namePart>
  <namePart type="family">Eng</namePart>
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<abstract lang="eng">The comprehensive description of both the electrical transport along conductive domain walls in lithium niobate single crystals and the charge injection at the interfacing metal electrodes, emerged to be a complex challenge. Recently, a heuristic evaluation allowed to postulate the “𝑅⁢2⁢𝐷⁢2
” equivalent-circuit model (consisting of two parallel resistor-diode pairs) to appropriately match the dc current-voltage (I-V) characteristics. Here, we carefully revisit the interfacial electrical behavior, i.e., the diode part of the equivalent circuit model, since many more processes beyond the diode-related electron hopping transport (HT) assumed so far, may concurrently occur, such as thermionic emission (TE), Fowler-Nordheim tunneling (FNT), space-charge limited conduction (SCLC), and others. The “𝑅⁢2⁢𝐷⁢2
” model thus needs to be generalized into an “𝑅⁢2⁢𝑋⁢2
” circuit model (with 𝑋
= HT, TE, FNT, SCLC, and others) to fit to the experimental data. Moreover, to check for the best I-V curve fitting to the different theories, we apply a higher-harmonic DW current-contribution analysis, i.e., an ac I-V inspection, that allows us to discriminate between all these possible models with much higher precision than from pure dc I-V curve fitting. Both the ac and dc analysis yield consistent results, finding that the FNT model accounts best for the domain-wall/electrode junctions investigated here.</abstract>

<originInfo><publisher>American Physical Society (APS)</publisher><dateIssued encoding="w3cdtf">2026</dateIssued>
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<language><languageTerm authority="iso639-2b" type="code">eng</languageTerm>
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<relatedItem type="host"><titleInfo><title>Physical Review B</title></titleInfo>
  <identifier type="issn">2469-9950</identifier>
  <identifier type="issn">2469-9969</identifier><identifier type="doi">10.1103/3q26-4c3g</identifier>
<part><detail type="volume"><number>114</number></detail><detail type="issue"><number>4</number></detail>
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<bibliographicCitation>
<apa>Zahn, M., Beyreuther, E., Kiseleva, I., Ratzenberger, J., Rüsing, M., &amp;#38; Eng, L. M. (2026). Domain-wall/metal-electrode injection barrier in lithium niobate: Fowler-Nordheim tunneling fits best. &lt;i&gt;Physical Review B&lt;/i&gt;, &lt;i&gt;114&lt;/i&gt;(4), Article 045406. &lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;https://doi.org/10.1103/3q26-4c3g&lt;/a&gt;</apa>
<ieee>M. Zahn, E. Beyreuther, I. Kiseleva, J. Ratzenberger, M. Rüsing, and L. M. Eng, “Domain-wall/metal-electrode injection barrier in lithium niobate: Fowler-Nordheim tunneling fits best,” &lt;i&gt;Physical Review B&lt;/i&gt;, vol. 114, no. 4, Art. no. 045406, 2026, doi: &lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;10.1103/3q26-4c3g&lt;/a&gt;.</ieee>
<chicago>Zahn, Manuel, Elke Beyreuther, Iuliia Kiseleva, Julius Ratzenberger, Michael Rüsing, and Lukas M. Eng. “Domain-Wall/Metal-Electrode Injection Barrier in Lithium Niobate: Fowler-Nordheim Tunneling Fits Best.” &lt;i&gt;Physical Review B&lt;/i&gt; 114, no. 4 (2026). &lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;https://doi.org/10.1103/3q26-4c3g&lt;/a&gt;.</chicago>
<short>M. Zahn, E. Beyreuther, I. Kiseleva, J. Ratzenberger, M. Rüsing, L.M. Eng, Physical Review B 114 (2026).</short>
<mla>Zahn, Manuel, et al. “Domain-Wall/Metal-Electrode Injection Barrier in Lithium Niobate: Fowler-Nordheim Tunneling Fits Best.” &lt;i&gt;Physical Review B&lt;/i&gt;, vol. 114, no. 4, 045406, American Physical Society (APS), 2026, doi:&lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;10.1103/3q26-4c3g&lt;/a&gt;.</mla>
<ama>Zahn M, Beyreuther E, Kiseleva I, Ratzenberger J, Rüsing M, Eng LM. Domain-wall/metal-electrode injection barrier in lithium niobate: Fowler-Nordheim tunneling fits best. &lt;i&gt;Physical Review B&lt;/i&gt;. 2026;114(4). doi:&lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;10.1103/3q26-4c3g&lt;/a&gt;</ama>
<bibtex>@article{Zahn_Beyreuther_Kiseleva_Ratzenberger_Rüsing_Eng_2026, title={Domain-wall/metal-electrode injection barrier in lithium niobate: Fowler-Nordheim tunneling fits best}, volume={114}, DOI={&lt;a href=&quot;https://doi.org/10.1103/3q26-4c3g&quot;&gt;10.1103/3q26-4c3g&lt;/a&gt;}, number={4045406}, journal={Physical Review B}, publisher={American Physical Society (APS)}, author={Zahn, Manuel and Beyreuther, Elke and Kiseleva, Iuliia and Ratzenberger, Julius and Rüsing, Michael and Eng, Lukas M.}, year={2026} }</bibtex>
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