2020
DOI: 10.1002/adma.202001160
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Asymmetric Electron Acceptors for High‐Efficiency and Low‐Energy‐Loss Organic Photovoltaics

Abstract: Low energy loss and efficient charge separation under small driving forces are the prerequisites for realizing high power conversion efficiency (PCE) in organic photovoltaics (OPVs). Here, a new molecular design of nonfullerene acceptors (NFAs) is proposed to address above two issues simultaneously by introducing asymmetric terminals. Two NFAs, BTP‐S1 and BTP‐S2, are constructed by introducing halogenated indandione (A1) and 3‐dicyanomethylene‐1‐indanone (A2) as two different conjugated terminals on the centra… Show more

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Cited by 283 publications
(273 citation statements)
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“…[ 1–6 ] Nonfullerene small molecular acceptors (SMAs) [ 7–29 ] are the main driving force for the recent development of the field, with power conversion efficiencies (PCEs) over 17% reported by different teams. [ 30–43 ] SMAs have many attractive properties including their strong and tunable absorption, the easily adjustable energy levels and the enhanced chemical and device stability. Most of these excellent features are enabled by the flexible and feasible synthesis of the SMAs that leads to numerous judiciously designed molecular structures.…”
Section: Methodsmentioning
confidence: 99%
“…[ 1–6 ] Nonfullerene small molecular acceptors (SMAs) [ 7–29 ] are the main driving force for the recent development of the field, with power conversion efficiencies (PCEs) over 17% reported by different teams. [ 30–43 ] SMAs have many attractive properties including their strong and tunable absorption, the easily adjustable energy levels and the enhanced chemical and device stability. Most of these excellent features are enabled by the flexible and feasible synthesis of the SMAs that leads to numerous judiciously designed molecular structures.…”
Section: Methodsmentioning
confidence: 99%
“…Similar instances of high J SC (high EQE) despite incredibly low or zero T HOMO or T LUMO have been reported elsewhere. 65,[246][247][248][249][250] Voltage loss (V loss ), calculated from the difference between optical bandgap of the solar cell active layer and V OC of the device (V loss = E g /q -V OC ), is the key concern for obtaining the maximum performance from a given pair of WBG polymer donor and NFA. 248,250 This voltage loss (also referred to as energy loss, E loss = eV loss ) can be minimized by increasing the difference between E LUMO of the acceptor and E HOMO of the donor as the V OC of OSCs is proportional to this difference.…”
Section: Matching Energy Levels For Minimizing E Lossmentioning
confidence: 99%
“…[ 30–35 ] The power conversion efficiencies (PCEs) of Y‐series NFA–based OSCs have been boosted to over 17% by material optimization, [ 36–38 ] or using ternary blends. [ 39–41 ] Thereby, Y‐series NFAs have become the best performing electron acceptors for OSCs to date.…”
Section: Introductionmentioning
confidence: 99%