2016
DOI: 10.1002/smll.201600945
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Absorption Enhancement in “Giant” Core/Alloyed-Shell Quantum Dots for Luminescent Solar Concentrator

Abstract: Luminescent solar concentrators (LSCs) can potentially reduce the cost of solar cells by decreasing the photoactive area of the device and boosting the photoconversion efficiency (PCE). This study demonstrates the application of "giant" CdSe/Cd Pb S core/shell quantum dots (QDs) as light harvesters in high performance LSCs with over 1.15% PCE. Pb addition is critical to maximize PCE. First, this study synthesizes "giant" CdSe/Cd Pb S QDs with high quantum yield (40%), narrow size distribution (<10%), and stabl… Show more

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Cited by 117 publications
(76 citation statements)
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“…One promising approach is the use of core/shell structured nanocrystals, forming quasi-type II heterojunction where the shell has larger energy bandgap and acts as a light absorbing antenna that transfers the energy to the core crystal as the light emitter. [11,51,[73][74][75] Impurity-doping and alloying are both alternative approaches to tackle the reabsorption problem. For example, in Mn-doped ZnSe/ZnS core/shell NCs, small amount (0.1-1%) of Mn 2+ introduces new localized excited energy states within the bandgap of ZnSe resulting in exhibit enhanced downshifted luminescence.…”
Section: Wwwadvopticalmatdementioning
confidence: 99%
“…One promising approach is the use of core/shell structured nanocrystals, forming quasi-type II heterojunction where the shell has larger energy bandgap and acts as a light absorbing antenna that transfers the energy to the core crystal as the light emitter. [11,51,[73][74][75] Impurity-doping and alloying are both alternative approaches to tackle the reabsorption problem. For example, in Mn-doped ZnSe/ZnS core/shell NCs, small amount (0.1-1%) of Mn 2+ introduces new localized excited energy states within the bandgap of ZnSe resulting in exhibit enhanced downshifted luminescence.…”
Section: Wwwadvopticalmatdementioning
confidence: 99%
“…Colloidal semiconductor nanocrystals (NCs) [quantum dots (QDs)], attract widespread attention due to their potential use as a tunable optoelectronic material . They are efficient light emitters and absorbers and well‐suited for applications such as lasing, photodetection, and solar energy conversion . Among the available structures, core/shell QDs, where the shell passivates the core surface atoms, are highly developed .…”
Section: Introductionmentioning
confidence: 99%
“…[1] They are efficient light emitters and absorbers and well-suited for applications such as lasing, photodetection, and solar energy conversion. [2][3][4][5][6][7][8] Among the available structures, core/shell QDs, where the shell passivates the core surface atoms, are highly developed. [9,10] The resulting reduced overlap with trap states at the surface improves the optical properties of the QDs.…”
Section: Introductionmentioning
confidence: 99%
“…Some photoluminescent materials are able to convert UV photons into lowenergy photons, which can prevent UV light from negatively interacting with perovskite photoactive materials. [13][14][15] Specifically, a multifunctional lightshifting V570 coating on dye-sensitized solar cell not only resulted in a 60% PCE improvement, but also prevented dye decomposition. [12] Therefore, luminescence downconverting materials can not only reduce the corrosion effect of UV on devices but may also improve the PCE of the devices.…”
mentioning
confidence: 99%
“…The introduction of UV-blocking and UV-conversion materials has represented two very important issues to be addressed in the organic, quantum dots, and dyesensitized solar cell. [13][14][15] Specifically, a multifunctional lightshifting V570 coating on dye-sensitized solar cell not only resulted in a 60% PCE improvement, but also prevented dye decomposition. [13] Trans-5-(p-(N,N-diphenylamino)styril)-1,3di(2-pyridyl)-benzene as a luminescent downshifting layer was also coated on organic solar cells to achieve ≈4% PCE improvement and long-term stability.…”
mentioning
confidence: 99%