Home

radikální Provedení puberta low band gap p conjugated polymers presentation kotě Let Snížení

Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing  organic solar cells - Nanoscale Advances (RSC Publishing)  DOI:10.1039/D1NA00245G
Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing organic solar cells - Nanoscale Advances (RSC Publishing) DOI:10.1039/D1NA00245G

Controlling Molecular Mass of Low-Band-Gap Polymer Acceptors for  High-Performance All-Polymer Solar Cells - ScienceDirect
Controlling Molecular Mass of Low-Band-Gap Polymer Acceptors for High-Performance All-Polymer Solar Cells - ScienceDirect

Low-Energy-Loss Polymer Solar Cells with 14.52% Efficiency Enabled by Wide- Band-Gap Copolymers
Low-Energy-Loss Polymer Solar Cells with 14.52% Efficiency Enabled by Wide- Band-Gap Copolymers

Texture and nanostructural engineering of conjugated conducting and  semiconducting polymers - ScienceDirect
Texture and nanostructural engineering of conjugated conducting and semiconducting polymers - ScienceDirect

Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing  organic solar cells - Nanoscale Advances (RSC Publishing)  DOI:10.1039/D1NA00245G
Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing organic solar cells - Nanoscale Advances (RSC Publishing) DOI:10.1039/D1NA00245G

Very Small Bandgap π-Conjugated Polymers with Extended Thienoquinoids |  Journal of the American Chemical Society
Very Small Bandgap π-Conjugated Polymers with Extended Thienoquinoids | Journal of the American Chemical Society

How to Design Donor–Acceptor Based Heterocyclic Conjugated Polymers for  Applications from Organic Electronics to Sensors | SpringerLink
How to Design Donor–Acceptor Based Heterocyclic Conjugated Polymers for Applications from Organic Electronics to Sensors | SpringerLink

Low Band Gap Donor–Acceptor Conjugated Polymers with Indanone-Condensed  Thiadiazolo[3,4-g]quinoxaline Acceptors
Low Band Gap Donor–Acceptor Conjugated Polymers with Indanone-Condensed Thiadiazolo[3,4-g]quinoxaline Acceptors

Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 -  Advanced Materials Technologies - Wiley Online Library
Low Band Gap Conjugated Semiconducting Polymers - Scharber - 2021 - Advanced Materials Technologies - Wiley Online Library

π‐Conjugated Donor Polymers: Structure Formation and Morphology in  Solution, Bulk and Photovoltaic Blends - Hildner - 2017 - Advanced Energy  Materials - Wiley Online Library
π‐Conjugated Donor Polymers: Structure Formation and Morphology in Solution, Bulk and Photovoltaic Blends - Hildner - 2017 - Advanced Energy Materials - Wiley Online Library

Narrow-band gap Benzodipyrrolidone (BDPD) based donor conjugated polymer: A  theoretical investigation - ScienceDirect
Narrow-band gap Benzodipyrrolidone (BDPD) based donor conjugated polymer: A theoretical investigation - ScienceDirect

A Wide Band Gap Polymer with a Deep Highest Occupied Molecular Orbital  Level Enables 14.2% Efficiency in Polymer Solar Cells | Journal of the  American Chemical Society
A Wide Band Gap Polymer with a Deep Highest Occupied Molecular Orbital Level Enables 14.2% Efficiency in Polymer Solar Cells | Journal of the American Chemical Society

50th Anniversary Perspective: Conducting/Semiconducting Conjugated Polymers.  A Personal Perspective on the Past and the Future
50th Anniversary Perspective: Conducting/Semiconducting Conjugated Polymers. A Personal Perspective on the Past and the Future

Structure and Optical Bandgap Relationship of π-Conjugated Systems | PLOS  ONE
Structure and Optical Bandgap Relationship of π-Conjugated Systems | PLOS ONE

Low-Bandgap Near-IR Conjugated Polymers/Molecules for Organic Electronics |  Chemical Reviews
Low-Bandgap Near-IR Conjugated Polymers/Molecules for Organic Electronics | Chemical Reviews

Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing  organic solar cells - Nanoscale Advances (RSC Publishing)  DOI:10.1039/D1NA00245G
Recent progress of ultra-narrow-bandgap polymer donors for NIR-absorbing organic solar cells - Nanoscale Advances (RSC Publishing) DOI:10.1039/D1NA00245G

Classroom experiments and teaching materials on OLEDs with semiconducting  polymers
Classroom experiments and teaching materials on OLEDs with semiconducting polymers

Movement of new direction from conjugated polymer to semiconductor  composite polymer nanofiber
Movement of new direction from conjugated polymer to semiconductor composite polymer nanofiber

Formation of energy bands in conjugated polymers. (Figure redrawn and... |  Download Scientific Diagram
Formation of energy bands in conjugated polymers. (Figure redrawn and... | Download Scientific Diagram

Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From  Diarylcyclopentadienone-Fused Naphthalimides
Frontiers | Low Bandgap Donor-Acceptor π-Conjugated Polymers From Diarylcyclopentadienone-Fused Naphthalimides

Small-bandgap quinoid-based π-conjugated polymers - Journal of Materials  Chemistry C (RSC Publishing) DOI:10.1039/D0TC01041C
Small-bandgap quinoid-based π-conjugated polymers - Journal of Materials Chemistry C (RSC Publishing) DOI:10.1039/D0TC01041C

Dirac Cones in two-dimensional conjugated polymer networks | Nature  Communications
Dirac Cones in two-dimensional conjugated polymer networks | Nature Communications

Tailoring π-conjugation and vibrational modes to steer on-surface synthesis  of pentalene-bridged ladder polymers | Nature Communications
Tailoring π-conjugation and vibrational modes to steer on-surface synthesis of pentalene-bridged ladder polymers | Nature Communications

Designing π-conjugated polymers for organic electronics - ScienceDirect
Designing π-conjugated polymers for organic electronics - ScienceDirect