The initial operation of a light-emitting electrochemical cell (LEC) constitutes the in-situ formation of a p-n junction doping structure in the active material by electrochemical doping. It has been firmly established that the spatial position of the emissive p-n junction in the interelectrode gap has a profound influence on the LEC performance because of exciton quenching and microcavity effects. Hence, practical strategies for a control of the position of the p-n junction in LEC devices are highly desired. Here, we introduce a "chemical pre-doping" approach for the rational shifting of the p-n junction for improved performance. Specifically, we demonstrate, by combined experiments and simulations, that the addition of a strong chemical r...
Static p-n junctions in inorganic semiconductors are exploited in a wide range of today's electronic...
The light-emitting electrochemical cell (LEC) is a contender for emerging applications of light, pri...
Light-emitting electrochemical cells offer efficient light-emission but suffer from short operationa...
The initial operation of a light-emitting electrochemical cell (LEC) constitutes the in-situ formati...
A highly functional p-n junction doping structure can be realized within a light-emitting electroche...
The application of doping in semiconductors plays a major role in the high performances achieved to ...
Polymer light-emitting electrochemical cells (LECs), the electrochemical analog of light-emitting di...
The position of the emission zone (EZ) in the active material of a light-emitting electrochemical ce...
The position of the emission zone (EZ) in the active material of a light-emitting electrochemical ce...
In conventional light-emitting electrochemical cells (LECs), an off-centered p–n junction is one of ...
Low-voltage-operating organic electrochemical light-emitting cells (LECs) and transistors (OECTs) ca...
The characteristic doping process in polymer light-emitting electrochemical cells (LECs) causes a tr...
The characteristic doping process in polymer light-emitting electrochemical cells (LECs) causes a tr...
Static p-n junctions in inorganic semiconductors are exploited in a wide range of today's electronic...
The light-emitting electrochemical cell (LEC) is a contender for emerging applications of light, pri...
Light-emitting electrochemical cells offer efficient light-emission but suffer from short operationa...
The initial operation of a light-emitting electrochemical cell (LEC) constitutes the in-situ formati...
A highly functional p-n junction doping structure can be realized within a light-emitting electroche...
The application of doping in semiconductors plays a major role in the high performances achieved to ...
Polymer light-emitting electrochemical cells (LECs), the electrochemical analog of light-emitting di...
The position of the emission zone (EZ) in the active material of a light-emitting electrochemical ce...
The position of the emission zone (EZ) in the active material of a light-emitting electrochemical ce...
In conventional light-emitting electrochemical cells (LECs), an off-centered p–n junction is one of ...
Low-voltage-operating organic electrochemical light-emitting cells (LECs) and transistors (OECTs) ca...
The characteristic doping process in polymer light-emitting electrochemical cells (LECs) causes a tr...
The characteristic doping process in polymer light-emitting electrochemical cells (LECs) causes a tr...
Static p-n junctions in inorganic semiconductors are exploited in a wide range of today's electronic...
The light-emitting electrochemical cell (LEC) is a contender for emerging applications of light, pri...
Light-emitting electrochemical cells offer efficient light-emission but suffer from short operationa...