SUBSTITUTIONAL BORON DOPANTS IN TRIPHENLYENE MOTIF FOR PHOTOVOLTAIC OR PHOTODIODE APPLICATIONS
20250107307 ยท 2025-03-27
Assignee
Inventors
- Paul A. Brown (Laurel Springs, NC, US)
- Jakub Kolacz (Alexandria, VA, US)
- Christopher M. Spillmann (Annandale, VA, US)
Cpc classification
H10K30/10
ELECTRICITY
H10K30/60
ELECTRICITY
International classification
Abstract
Quasi-planar borane doped into (hexathiol)triphenylenes (TPP) operates as the photoactive component in the heterojunction of photovoltaics or photodiodes in heterojunctions with monolayer graphene.
Claims
1. A heterojunction comprising: a boron-doped (hexathiol)triphenylene; and a monolayer of graphene in intimate contact therewith.
2. The heterojunction of claim 1, configured as a photovoltaic cell or as a photodiode.
3. The heterojunction of claim 1, wherein the boron-doped (hexathiol)triphenylene comprises one or more molecules selected from the group consisting of ##STR00001## wherein R is H or an alkyl group.
4. The heterojunction of claim 3, configured as a photovoltaic cell or as a photodiode.
5. The heterojunction of claim 1, wherein the boron-doped (hexathiol)triphenylene comprises one or more molecules selected from the group consisting of ##STR00002##
6. The heterojunction of claim 5, configured as a photovoltaic cell or as a photodiode.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0009] A more complete appreciation will be readily obtained by reference to the following Description of the Example Embodiments and the accompanying drawings.
[0010]
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DETAILED DESCRIPTION
Definitions
[0016] Before describing the present invention in detail, it is to be understood that the terminology used in the specification is for the purpose of describing particular embodiments, and is not necessarily intended to be limiting. Although many methods, structures and materials similar, modified, or equivalent to those described herein can be used in the practice of the present invention without undue experimentation, the preferred methods, structures and materials are described herein. In describing and claiming the present invention, the following terminology will be used in accordance with the definitions set out below.
[0017] As used herein, the singular forms a, an, and the do not preclude plural referents, unless the content clearly dictates otherwise.
[0018] As used herein, the term and/of includes any and all combinations of one or more of the associated listed items.
[0019] As used herein, the term about when used in conjunction with a stated numerical value or range denotes somewhat more or somewhat less than the stated value or range, to within a range of 10% of that stated.
Overview
[0020] Described herein are quasi-planar borane doped into (hexathiol)triphenylenes (TPP) operable as the photoactive component in the heterojunction of photovoltaics or photodiodes (as depicted in
[0021] The present inventors have taken these boron-TPP dyads and use first principles DFT to calculate the molecular orbitals and interactions with each other and in proximity to MLG. The substitutional borane groups have a strong influence on frontier orbitals compared with TPP, and lower the HOMO/LUMO gap from 3.8 eV in classic (hexathiol)triphenylene to 1.841 eV for 2B, 1.793 eV for 4B, and 2.148 eV for 6B (referring to the molecular structures of
[0022] For dyads of boron-TPP molecules, the electron and hole coupling can be adjusted with boron stoichiometry and exchanging combinations of boron-TPP, as seen in
[0023] The heterojunctions for the boron-TPP/MLG systems show band offsets that can favor either a photovoltaic or a photodiode single junction device (
Further Embodiments
[0024] The boron-doped compounds could be used with other two-dimensional substrates such as transition metal dichalcogenides, MXenes, boron-nitride, allotropes beyond graphene, photoactive compounds, etc.
[0025] Practically any photoactive molecules and/or substrates can be considered. Examples include but are not limited to intrinsic polymers, modified polymers, mesoporous and microporous organic and inorganic systems, MOFs, zeolites, and biomaterials.
[0026] Alternative methods for deposition of the photosensitive capping layer can be considered, such as inkjet printing, screen-printing, lithography, gravure, roll-to-roll, spray-printing, batik, laser, flexography, thermal-printing, stamping, intaglio, lamination, adhesion, evaporation, sputtering and ablation.
[0027] Illumination of the device may take place directly using a coherent or incoherent light source. The light can cover any portion of the absorbance spectrum of the photoactive layer.
Advantages
[0028] Incorporation of boron-doped molecules as a photoactive layer in contact with graphene provides a large degree of device tunability with variation in dopant stoichiometry. The enhanced electron and hole coupling across dyad combinations and low barrier Ohmic contacts with graphene provide an enhancement in organic-based applications including photovoltaics and photodiodes. Further these devices can operate across a large optical window of absorption, across the visible to near-IR light individually or in donor acceptor dyad pairs (
CONCLUDING REMARKS
[0029] All documents mentioned herein are hereby incorporated by reference for the purpose of disclosing and describing the particular materials and methodologies for which the document was cited.
[0030] Although the present invention has been described in connection with preferred embodiments thereof, it will be appreciated by those skilled in the art that additions, deletions, modifications, and substitutions not specifically described may be made without departing from the spirit and scope of the invention. Terminology used herein should not be construed as being means-plus-function language unless the term means is expressly used in association therewith.
REFERENCES
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