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Tuning the Nonlinear Optical Properties of MoS2 by Interfacing with Bay- or Imide-Substituted Perylene Diimides


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Title:
Tuning the Nonlinear Optical Properties of MoS2 by Interfacing with Bay- or Imide-Substituted Perylene Diimides
Authors:
Nikoli, Eleni
Canton-Vitoria, Ruben
Skentzos, Georgios
Pramatioti, Efrosyni
Zink-Lorre, Nathalie
Gutiérrez-Vílchez, Ana Mª
Fernández-Lázaro, Fernando
Arenal, Raul
Couris, Stelios
Tagmatarchis, Nikos
Editor:
American Chemical Society
Department:
Departamentos de la UMH::Farmacología, Pediatría y Química Orgánica
Issue Date:
2026-02
URI:
https://hdl.handle.net/11000/40882
Abstract:
We have investigated the tuning of nonlinear optical (NLO) properties in semiconducting MoS2 nanosheets through covalent functionalization with bay- or imide-substituted perylene diimide (PDI) derivatives. Five MoS2−PDI hybrid nanomaterials 1a−5a were synthesized by attaching PDI variants featuring azobenzene or other substituents, characterized via Raman, IR, TGA, STEM-EDS, ultraviolet−visible (UV−vis), photoluminescence, and electrochemical analyses, and evaluated for NLO response under nanosecond (4 ns, 1064/532 nm) and femtosecond (70 fs, 800/400 nm) laser excitations. The hybrids exhibit enhanced and tunable NLO-absorptive (switching from saturable to reverse-saturable absorption with intensity) and NLO-refractive (self-focusing) responses compared to exfoliated MoS2, with 1a and 2a (azobenzene-substituted PDIs) showing the strongest effects due to efficient electron-transfer and -resonant excitations. Hybrids demonstrate superior NLO susceptibility (χ3) values, particularly under resonant 532 nm excitation, with Im{χ3} values of up to −514.7 ± 57.4 × 10−13 esu·mL/mg for 2a at low intensities, attributed to Pauli blocking, defect states, and two-photon processes. Hybrids having bay-substituted PDIs grafted on MoS2 enhance conjugation and performance over imide variants, enabling applications in optical-limiting, mode-locking, and photonic devices. Threshold intensities for NLA switching (150−250 MW/cm2) exceed those of MoS2, highlighting the stability for high-power uses. The developed hybrid materials advance two-dimensional transition-metal dichalcogenide-based optoelectronics by overcoming light−matter interaction limits through molecular antenna effects from PDIs. The study underscores the substituent position and azobenzene integration as levers for NLO optimization in hybrid nanoarchitectures.
Keywords/Subjects:
transition-metal dichalcogenides
molybdenum disulfide
perylene diimide
functionalization
nonlinear optics
Knowledge area:
CDU: Ciencias puras y naturales: Química
Type of document:
info:eu-repo/semantics/article
Access rights:
info:eu-repo/semantics/openAccess
Attribution-NonCommercial-NoDerivatives 4.0 Internacional
DOI:
https://doi.org/10.1021/acsami.5c25463
Published in:
ACS Applied Materials & Interfaces - Vol. 18, Issue 7 (2026), pp. 11825–11841
Appears in Collections:
Artículos - Farmacología, Pediatría y Química Orgánica



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