Multilayered luminescent solar concentrators based on engineered quantum dots
View Patent ↗Luminescent solar concentrators (LSCs) based on engineered quantum dots (QDs) are disclosed that include at least one lower band-gap energy LSC layer and at least one higher band-gap energy LSC layer. The higher band-gap energy LSC layer has a higher internal quantum efficiency (IQE) than the lower band-gap energy LSC layer. The lower band-gap energy LSC layer may broadly absorb the remainder of the solar spectrum that is not absorbed by previous layers. An external optical efficiency (EQE) of at least 6%, and in some cases, more than 10%, may be achieved by such LSCs.
1. A luminescent solar concentrator (LSC) device, comprising:
a lower band-gap energy bottom LSC layer; and a
higher band-gap energy top LSC layer positioned above the lower band-gap energy bottom LSC layer, wherein
the higher band-gap energy top LSC layer has a higher band-gap energy than the lower band-gap energy bottom LSC layer, and
the higher band-gap energy top LSC layer has a higher internal quantum efficiency (IQE) than the lower band-gap energy bottom LSC layer;
wherein the higher band-gap energy top LSC layer, the lower band-gap energy bottom LSC layer, or both, comprise quantum dots (QDs);
wherein the higher band-gap energy top LSC layer comprises one or more of the following: wide band-gap nanocrystals (NCs) selected from a group consisting of II-VI, III-V, I-III-VI2 semiconductors, all-inorganic perovskites and organic-inorganic hybrid perovskites comprising alloyed compounds prepared as spherical quantum dots (QDs), nanorods, nanoplatelets, tetrapods and combinations thereof;
heterostructured nanocrystals selected from a group consisting of I-VI, III-V, I-III-VI2 semiconductors, their alloys and combinations thereof, prepared as core/shell NCs, selected from heteronanorods, hetero-nanoplatelets, and/or hetero-tetrapods; and/or
NCs doped with emissive impurities;
wherein the higher band-gap energy top LSC layer comprises a group consisting of core/shell CdSe/CdS quantum dots (QDs), nanorods, and/or nanoplatelets, core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, InP QDs, core/shell InP/ZnS QDs, Mn-doped Cd x Zn 1-x Se y S 1-y QDs, Mn-doped core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, Cu-doped Cd x Zn 1-x Se y S 1-y QDs, Cu-doped core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, or any combination thereof;
wherein the lower band-gap energy bottom LSC layer comprises nanocrystals of narrow band-gap semiconductors comprising CdTe, PbSe, PbS, PbSe x S 1-x , CuInS 2 , a CuInS 2 —ZnS alloy, CuInSe 2 , a CuInSe 2 —ZnS alloy, CuInSe x S 2-x , a CuInSe 2 —ZnSeS alloy, AgInS 2 , AgInSe 2 , AgInSe x S 2 , Si, Ge, a SiGe alloy, and/or GaAs, any combination thereof, or heterostructures based on a combination of any of the previous materials with one or more wider band-gap materials comprising core/shell selected from the group consisting of PbSe/Cd Se QDs, PbS/CdS QDs, CuInS 2 /ZnS QDs, CuInSe 2 /ZnSe QDs, and/or CuInSe 2 /ZnSe/ZnS QDs;
said bottom LSC layer comprising strong absorbance across the solar spectrum; said top LSC layer virtually reabsorption free and both layers exhibit high emission quantum yield (QY).
2. The LSC device of claim 1 , further comprising:
a plurality of edge-mounted photovoltaics (PVs) mounted to respective edges of each LSC layer, wherein
the edge mounted PVs are band-gap-matched solar cells matched to the bandgaps of quantum dots (QDs) in a respective layer to which the respective PV is mounted.
3. The LSC device of claim 1 , further comprising:
at least one additional LSC layer between the higher band-gap energy top LSC layer and the lower band-gap energy bottom LSC layer, the at least one additional LSC layer having a band-gap energy and an IQE that is between those of the higher band-gap energy top LSC layer and the lower band-gap energy bottom LSC layer.
4. The LSC device of claim 3 , wherein the at least one additional layer comprises core-shell II-VI quantum dots (QDs) with shell greater than 4 nm in thickness comprising CdSe/CdS QDs, CdSe/Cd x Zn 1-x Se QDs, and/or Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, Cu-doped II-VI QDs, Cu-doped core-shell II-VI QDs, or any combination thereof.
5. The LSC device of claim 1 , wherein the higher band-gap energy top LSG layer, the lower band-gap energy bottom LSC layer, or both, comprise quantum dots (QDs) coated with a ZnS shell.
6. The LSC device of claim 5 wherein the coated cores and the cores themselves have a tetrahedral shape.
7. The LSC device of claim 5 wherein the QDs have an absorption onset of 950 nm or more.
8. The luminescent solar concentrator (LSC) device according to claim 1 wherein the lower band gap energy bottom LSC layer is CulnSe x S 2-x QDs and the higher band-gap energy top LSC layer is Mn-doped Cd x Zn 1-x Se y S 1-y QDs.
9. The luminescent solar concentrator (LSC) device according to claim 1 , wherein the bottom LSC layer comprises core-shell II-VI quantum dots (QDs) with an extra thick shell greater than 4 nm in thickness.
10. A luminescent solar concentrator (LSC) device comprising:
a lower band-gap energy bottom LSC layer;
a higher band-gap energy top LSC layer positioned above the lower band-gap energy bottom LSC layer, and
optionally, an intermediate band-gap energy intermediate LSC layer positioned between the lower band-gap energy bottom LSC layer and the higher band-gap energy top LSC layer, having a band-gap energy and an IQE in between those of the LSC layers above and below it,
wherein the higher band-gap energy top LSC layer has a higher band-gap energy than the lower band-gap energy bottom LSC layer, and
the higher band-gap energy top LSC layer has a higher internal quantum efficiency (IQE) than the lower band-gap energy bottom LSC layer;
wherein the higher band-gap energy top LSC layer, the lower band-gap energy bottom LSC layer, or both, comprise quantum dots (QDs);
wherein the higher band-gap energy top LSC layer comprises one or more of the following: wide band-gap nanocrystals (NCs) selected from a group consisting of II-VI, III-V, I-III-VI2 semiconductors, all-inorganic perovskites and organic-inorganic hybrid perovskites comprising alloyed compounds prepared as spherical quantum dots (QDs), nanorods, nanoplatelets, tetrapods and combinations thereof;
heterostructured nanocrystals selected from a group consisting of II-VI, II-V, I-III-VI2 semiconductors, their alloys and combinations thereof, prepared as core/shell NCs, selected from heteronanorods, hetero-nanoplatelets, and/or hetero-tetrapods; and/or
NCs doped with emissive impurities;
wherein the lower band-gap energy bottom LSC layer comprises nanocrystals of narrow band-gap semiconductors comprising CdTe, PbSe, PbS, PbSe x S 1-x , CuInS 2 , a CuInS 2 —ZnS alloy, CuInSe 2 , a CuInSe 2 —ZnS alloy, CuInSe x S 2-x , a CuInSe 2 —ZnSeS alloy, AgInS 2 , AgInSe 2 , AglnSe x S 2 , Si, Ge, a SiGe alloy, and/or GaAs, any combination thereof, or heterostructures based on a combination of any of the previous materials with one or more wider band-gap materials comprising core/shell selected from the group consisting of PbSe/Cd Se QDs, PbS/CdS QDs, CuInS 2 /ZnS QDs, CuInSe 2 /ZnSe QDs, and/or CuInSe 2 ZnSe/ZnS QDs;
wherein the higher band-gap energy top LSC layer comprises a group consisting of core/shell CdSe/CdS quantum dots (QDs), nanorods, and/or nanoplatelets, core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, InP QDs, core/shell InP/ZnS QDs, Mn-doped Cd x Zn 1-x Se y S 1-y QDs, Mn-doped core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, Cu-doped Cd x Zn 1-x Se y S 1-y /QDs, Cu-doped core/shell Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, or any combination thereof;
wherein the intermediate band-gap energy intermediate LSC layer comprises core-shell II-VI quantum dots (QDs) with shell greater than 4 nm in thickness comprising CdSe/CdS QDs, CdSe/Cd x Zn 1-x Se QDs, and/or Cd x Zn 1-x Se y S 1-y /ZnSe z S 1-z QDs, Cu-doped II-VI QDs, Cu-doped core-shell II-VI QDs, or any combination thereof;
said bottom LSC layer comprising strong absorbance across the solar spectrum; said top LSC layer virtually reabsorption free and both layers exhibit high emission quantum yield (QY).
11. The luminescent solar concentrator (LSC) device according to claim 1 , wherein the emission quantum yield is at least 80-88%.