Meta-optics based on optically resonant all-dielectric structures is a rapidly developing research area driven by its potential applications for low-loss efficient metadevices. Active, light-emitting subwavelengh nanostructures and metasurfaces are of particular interest for meta-optics, as they offer unique opportunities for novel types of compact light sources and nanolasers. Recently, the study of “halide perovskites” has attracted enormous attention due to their exceptional optical and electrical properties. As a result, this family of materials can provide a prospective platform for modern nanophotonics and meta-optics, allowing us to overcome many obstacles associated with the use of conventional semiconductor materials. Here, we review the recent progress in the field of halide-perovskite meta-optics with the central focus on light-emitting nanoantennas and metasurfaces for the emerging field of “active metadevices.”

1.
F.
Koenderink
,
A.
Alu
, and
A.
Polman
, “
Nanophotonics: Shrinking light-based technology
,”
Science
348
,
516
521
(
2015
).
2.
M. I.
Stockman
, “
Nanoplasmonics: Past, present, and glimpse into future
,”
Opt. Express
19
,
22029
22106
(
2011
).
3.
A. I.
Kuznetsov
,
A. E.
Miroshnichenko
,
M. L.
Brongersma
,
Y. S.
Kivshar
, and
B.
Luk'yanchuk
, “
Optically resonant dielectric nanostructures
,”
Science
354
,
aag2472
(
2016
).
4.
S.
Kruk
and
Y.
Kivshar
, “
Functional meta-optics and nanophotonics governed by Mie resonances
,”
ACS Photonics
4
,
2638
(
2017
).
5.
D. G.
Baranov
,
D.
Zuev
,
S. I.
Lepeshov
,
O. I.
Kotov
,
A. E.
Krasnok
,
A. B.
Evlyukhin
, and
B. N.
Chichkov
, “
All-dielectric nanophotonics: The quest for better materials and fabrication techniques
,”
Optica
4
,
814
825
(
2017
).
6.
I.
Staude
,
T.
Pertsch
, and
Y.
Kivshar
, “
All-dielectric resonant meta-optics lightens up
,”
ACS Photonics
6
,
802
814
(
2019
).
7.
Y.-H.
Kim
,
H.
Cho
, and
T.-W.
Lee
, “
Metal halide perovskite light emitters
,”
Proc. Natl. Acad. Sci.
113
,
11694
11702
(
2016
).
8.
B. R.
Sutherland
and
E. H.
Sargent
, “
Perovskite photonic sources
,”
Nat. Photonics
10
,
295
(
2016
).
9.
See https://www.nrel.gov/pv/cell-efficiency.html for “
Best research-cell efficiency chart
.”
10.
K.
Lin
,
J.
Xing
,
L. N.
Quan
,
F. P. G.
de Arquer
,
X.
Gong
,
J.
Lu
,
L.
Xie
,
W.
Zhao
,
D.
Zhang
,
C.
Yan
,
W.
Li
,
X.
Liu
,
Y.
Lu
,
J.
Kirman
,
E. H.
Sargent
,
Q.
Xiong
, and
Z.
Wei
, “
Perovskite light-emitting diodes with external quantum efficiency exceeding 20 per cent
,”
Nature
562
,
245
(
2018
).
11.
N.
Zheludev
and
Y.
Kivshar
, “
From metamaterials to metadevices
,”
Nat. Mater.
11
,
917
(
2012
).
12.
R. C.
McPhedran
,
I. V.
Shadrivov
,
B. T.
Kuhlmey
, and
Y.
Kivshar
, “
Metamaterials and meta-optics
,”
NPG Asia Mater.
3
,
100
108
(
2011
).
13.
S.
Bidault
,
M.
Mivelle
, and
N.
Bonod
, “
Dielectric nanoantennas to manipulate solid-state light emission
,”
J. Appl. Phys.
126
(
9
),
094104
(
2019
).
14.
A.
Capretti
,
A.
Lesage
, and
T.
Gregorkiewicz
, “
Integrating quantum dots and dielectric mie resonators: A hierarchical metamaterial inheriting the best of both
,”
ACS Photonics
4
,
2187
2197
(
2017
).
15.
V.
Rutckaia
,
F.
Heyroth
,
A.
Novikov
,
M.
Shaleev
,
M.
Petrov
, and
J.
Schilling
, “
Quantum dot emission driven by mie resonances in silicon nanostructures
,”
Nano Lett.
17
,
6886
6892
(
2017
).
16.
A.
Zalogina
,
R.
Saveliev
,
E. V.
Ushakova
,
G. P.
Zograf
,
P.
Komissarenko
,
V.
Milichko
,
S.
Makarov
,
D.
Zuev
, and
I.
Shadrivov
, “
Purcell effect in active diamond nanoantennas
,”
Nanoscale
10
,
8721
8727
(
2018
).
17.
I.
Staude
and
J.
Schilling
, “
Metamaterial-inspired silicon nanophotonics
,”
Nat. Photonics
11
,
274
284
(
2017
).
18.
J.
Xiang
,
S.
Jiang
,
J.
Chen
,
J.
Li
,
Q.
Dai
,
C.
Zhang
,
Y.
Xu
,
S.
Tie
, and
S.
Lan
, “
Hot-electron intraband luminescence from GaAs nanospheres mediated by magnetic dipole resonances
,”
Nano Lett.
17
,
4853
4859
(
2017
).
19.
S.
Liu
,
A.
Vaskin
,
S.
Addamane
,
B.
Leung
,
M.-C.
Tsai
,
Y.
Yang
,
P. P.
Vabishchevich
,
G. A.
Keeler
,
G.
Wang
, and
X.
He
, “
Light-emitting metasurfaces: Simultaneous control of spontaneous emission and far-field radiation
,”
Nano Lett.
18
,
6906
6914
(
2018
).
20.
S. T.
Ha
,
Y. H.
Fu
,
N. K.
Emani
,
Z.
Pan
,
R. M.
Bakker
,
R.
Paniagua-Domínguez
, and
A. I.
Kuznetsov
, “
Directional lasing in resonant semiconductor nanoantenna arrays
,”
Nat. Nanotechnol.
13
,
1042
(
2018
).
21.
W.-J.
Yin
,
J.-H.
Yang
,
J.
Kang
,
Y.
Yan
, and
S.-H.
Wei
, “
Halide perovskite materials for solar cells: A theoretical review
,”
J. Mater. Chem. A
3
,
8926
8942
(
2015
).
22.
J.
Kang
and
L.-W.
Wang
, “
High defect tolerance in lead halide perovskite cspbbr3
,”
J. Phys. Chem. Lett.
8
,
489
493
(
2017
).
23.
K.
Tanaka
,
T.
Takahashi
,
T.
Ban
,
T.
Kondo
,
K.
Uchida
, and
N.
Miura
, “
Comparative study on the excitons in lead-halide-based perovskite-type crystals CH3NH3PbBr3 CH3NH3PbI3
,”
Solid State Commun.
127
,
619
623
(
2003
).
24.
N.
Pellet
,
J.
Teuscher
,
J.
Maier
, and
M.
Grätzel
, “
Transforming hybrid organic inorganic perovskites by rapid halide exchange
,”
Chem. Mater.
27
,
2181
2188
(
2015
).
25.
D.
Solis-Ibarra
,
I.
Smith
, and
H.
Karunadasa
, “
Post-synthetic halide conversion and selective halogen capture in hybrid perovskites
,”
Chem. Sci.
6
,
4054
4059
(
2015
).
26.
E.
Tiguntseva
,
G. P.
Zograf
,
F. E.
Komissarenko
,
D. A.
Zuev
,
A. A.
Zakhidov
,
S. V.
Makarov
, and
Y. S.
Kivshar
, “
Light-emitting halide perovskite nanoantennas
,”
Nano Lett.
18
,
1185
1190
(
2018
).
27.
H.
Zhu
,
Y.
Fu
,
F.
Meng
,
X.
Wu
,
Z.
Gong
,
Q.
Ding
,
M. V.
Gustafsson
,
M. T.
Trinh
,
S.
Jin
, and
X.
Zhu
, “
Lead halide perovskite nanowire lasers with low lasing thresholds and high quality factors
,”
Nat. Mater.
14
,
636
(
2015
).
28.
J.
Xing
,
X. F.
Liu
,
Q.
Zhang
,
S. T.
Ha
,
Y. W.
Yuan
,
C.
Shen
,
T. C.
Sum
, and
Q.
Xiong
, “
Vapor phase synthesis of organometal halide perovskite nanowires for tunable room-temperature nanolasers
,”
Nano Lett.
15
,
4571
4577
(
2015
).
29.
P. J.
Cegielski
,
A. L.
Giesecke
,
S.
Neutzner
,
C.
Porschatis
,
M.
Gandini
,
D.
Schall
,
C. A. R.
Perini
,
J.
Bolten
,
S.
Suckow
,
S.
Kataria
,
B.
Chmielak
,
T.
Wahlbrink
,
A.
Petrozza
, and
M. C.
Lemme
, “
Monolithically integrated perovskite semiconductor lasers on silicon photonic chips by scalable top-down fabrication
,”
Nano Lett.
18
,
6915
6923
(
2018
).
30.
Q.
Zhang
,
S. T.
Ha
,
X.
Liu
,
T. C.
Sum
, and
Q.
Xiong
, “
Room-temperature near-infrared high-Q perovskite whispering-gallery planar nanolasers
,”
Nano Lett.
14
,
5995
6001
(
2014
).
31.
E.
Tiguntseva
,
Z.
Sadrieva
,
B.
Stroganov
,
Y. V.
Kapitonov
,
F.
Komissarenko
,
R.
Haroldson
,
B.
Balachandran
,
W.
Hu
,
Q.
Gu
,
A.
Zakhidov
,
A.
Bogdanov
, and
S. V.
Makarov
, “
Enhanced temperature-tunable narrow-band photoluminescence from resonant perovskite nanograting
,”
Appl. Surf. Sci.
473
,
419
424
(
2019
).
32.
V. C.
Su
,
C. H.
Chu
,
G.
Sun
, and
D. P.
Tsai
, “
Advances in optical metasurfaces: Fabrication and applications
,”
Opt. Exp.
26
(
10
),
13148
13182
(
2018
).
33.
S.
Makarov
,
A.
Furasova
,
E.
Tiguntseva
,
A.
Hemmetter
,
A.
Berestennikov
,
A.
Pushkarev
,
A.
Zakhidov
, and
Y.
Kivshar
, “
Halide-perovskite resonant nanophotonics
,”
Adv. Opt. Mater.
7
,
1800784
(
2019
).
34.
W.
Bogaerts
and
L.
Chrostowski
, “
Silicon photonics circuit design: Methods, tools and challenges
,”
Laser Photonics Rev.
12
,
1700237
(
2018
).
35.
A.
Ferrando
,
J. P.
Martínez Pastor
, and
I.
Suárez
, “
Toward metal halide perovskite nonlinear photonics
,”
J. Phys. Chem. Lett.
9
,
5612
5623
(
2018
).
36.
J.
Xu
,
X.
Li
,
J.
Xiong
,
C.
Yuan
,
S.
Semin
,
T.
Rasing
, and
X.-H.
Bu
, “
Halide perovskites for nonlinear optics
,”
Adv. Mater.
2019
,
1806736
(published online).
37.
W.
Chen
,
S.
Bhaumik
,
S. A.
Veldhuis
,
G.
Xing
,
Q.
Xu
,
M.
Grätzel
,
S.
Mhaisalkar
,
N.
Mathews
, and
T. C.
Sum
, “
Giant five-photon absorption from multidimensional core-shell halide perovskite colloidal nanocrystals
,”
Nat. Commun.
8
,
15198
(
2017
).
38.
Y.
Xu
,
Q.
Chen
,
C.
Zhang
,
R.
Wang
,
H.
Wu
,
X.
Zhang
,
G.
Xing
,
W. W.
Yu
,
X.
Wang
,
Y.
Zhang
, and
M.
Xiao
, “
Two-photon-pumped perovskite semiconductor nanocrystal lasers
,”
J. Am. Chem. Soc.
138
,
3761
3768
(
2016
).
39.
I.
Abdelwahab
,
G.
Grinblat
,
K.
Leng
,
Y.
Li
,
X.
Chi
,
A.
Rusydi
,
S. A.
Maier
, and
K. P.
Loh
, “
Highly enhanced third-harmonic generation in 2d perovskites at excitonic resonances
,”
ACS Nano
12
,
644
650
(
2018
).
40.
S. V.
Makarov
,
M. I.
Petrov
,
U.
Zywietz
,
V.
Milichko
,
D.
Zuev
,
N.
Lopanitsyna
,
A.
Kuksin
,
I.
Mukhin
,
G.
Zograf
,
E.
Ubyivovk
,
D. A.
Smirnova
,
S.
Starikov
,
B. N.
Chichkov
, and
Y. S.
Kivshar
, “
Efficient second-harmonic generation in nanocrystalline silicon nanoparticles
,”
Nano Lett.
17
,
3047
3053
(
2017
).
41.
M.
Cazzanelli
,
F.
Bianco
,
E.
Borga
,
G.
Pucker
,
M.
Ghulinyan
,
E.
Degoli
,
E.
Luppi
,
V.
Véniard
,
S.
Ossicini
,
D.
Modotto
,
S.
Wabnitz
,
R.
Pierobon
, and
L.
Pavesi
, “
Second-harmonic generation in silicon waveguides strained by silicon nitride
,”
Nat. Mater.
11
,
148
(
2012
).
42.
Z.-K.
Tan
,
R. S.
Moghaddam
,
M. L.
Lai
,
P.
Docampo
,
R.
Higler
,
F.
Deschler
,
M.
Price
,
A.
Sadhanala
,
L. M.
Pazos
,
D.
Credgington
,
F.
Hanusch
,
T.
Bein
,
H. J.
Snaith
, and
R. H.
Friend
, “
Bright light-emitting diodes based on organometal halide perovskite
,”
Nat. Nanotechnol.
9
,
687
(
2014
).
43.
W.
Xu
,
Q.
Hu
,
S.
Bai
,
C.
Bao
,
Y.
Miao
,
Z.
Yuan
,
T.
Borzda
,
A. J.
Barker
,
E.
Tyukalova
,
Z.
Hu
,
M.
Kawecki
,
H.
Wang
,
Z.
Yan
,
X.
Liu
,
X.
Shi
,
K.
Uvdal
,
M.
Fahlman
,
W.
Zhang
,
M.
Duchamp
,
J.-M.
Liu
,
A.
Petrozza
,
J.
Wang
,
L.-M.
Liu
,
W.
Huang
, and
F.
Gao
, “
Rational molecular passivation for high-performance perovskite light-emitting diodes
,”
Nat. Photonics
13
,
418
424
(
2019
).
44.
C.
Wiesmann
,
K.
Bergenek
,
N.
Linder
, and
U. T.
Schwarz
, “
Photonic crystal leds–designing light extraction
,”
Laser Photonics Rev.
3
,
262
286
(
2009
).
45.
R.-M.
Ma
and
R. F.
Oulton
, “
Applications of nanolasers
,”
Nat. Nanotechnol.
14
,
12
22
(
2019
).
46.
S. A.
Veldhuis
,
P. P.
Boix
,
N.
Yantara
,
M.
Li
,
T. C.
Sum
,
N.
Mathews
, and
S. G.
Mhaisalkar
, “
Perovskite materials for light-emitting diodes and lasers
,”
Adv. Mater.
28
,
6804
6834
(
2016
).
47.
S.
Makarov
,
I.
Sinev
,
V.
Milichko
,
F.
Komissarenko
,
D.
Zuev
,
E.
Ushakova
,
I.
Mukhin
,
Y.
Yu
,
A.
Kuznetsov
,
P.
Belov
 et al., “
Nanoscale generation of white light for ultrabroadband nanospectroscopy
,”
Nano Lett.
18
,
535
539
(
2018
).
48.
C.
Zhang
,
Y.
Xu
,
J.
Liu
,
J.
Li
,
J.
Xiang
,
H.
Li
,
J.
Li
,
Q.
Dai
,
S.
Lan
, and
A. E.
Miroshnichenko
, “
Lighting up silicon nanoparticles with Mie resonances
,”
Nat. Commun.
9
,
2964
(
2018
).
49.
M. D.
Smith
,
B. A.
Connor
, and
H. I.
Karunadasa
, “
Tuning the luminescence of layered halide perovskites
,”
Chem. Rev.
119
,
3104
3139
(
2019
).
50.
M. A.
Green
,
A.
Ho-Baillie
, and
H. J.
Snaith
, “
The emergence of perovskite solar cells
,”
Nat. Photonics
8
,
506
514
(
2014
).
51.
W.
Zhang
,
M.
Saliba
,
S. D.
Stranks
,
Y.
Sun
,
X.
Shi
,
U.
Wiesner
, and
H. J.
Snaith
, “
Enhancement of perovskite-based solar cells employing core–shell metal nanoparticles
,”
Nano Lett.
13
,
4505
4510
(
2013
).
52.
A.
Furasova
,
E.
Calabró
,
E.
Lamanna
,
E.
Tiguntseva
,
E.
Ushakova
,
E.
Ubyivovk
,
V.
Mikhailovskii
,
A.
Zakhidov
,
S.
Makarov
, and
A.
Di Carlo
, “
Resonant silicon nanoparticles for enhanced light harvesting in halide perovskite solar cells
,”
Adv. Opt. Mater.
6
,
1800576
(
2018
).
53.
A.
Jiménez-Solano
,
S.
Carretero-Palacios
, and
H.
Míguez
, “
Absorption enhancement in methylammonium lead iodide perovskite solar cells with embedded arrays of dielectric particles
,”
Opt. Express
26
,
A865
A878
(
2018
).
54.
Y.
Zhang
,
C.-K.
Lim
,
Z.
Dai
,
G.
Yu
,
J. W.
Haus
,
H.
Zhang
, and
P. N.
Prasad
, “
Photonics and optoelectronics using nanostructured hybrid perovskite media and their optical cavities
,”
Phys. Rep.
795
,
1
51
(
2019
).
55.
H. J.
Snaith
, “
Present status and future prospects of perovskite photovoltaics
,”
Nat. Mater.
17
,
372
(
2018
).
56.
B.
Tang
,
H.
Dong
,
L.
Sun
,
W.
Zheng
,
Q.
Wang
,
F.
Sun
,
X.
Jiang
,
A.
Pan
, and
L.
Zhang
, “
Single-mode lasers based on cesium lead halide perovskite submicron spheres
,”
ACS Nano
11
,
10681
10688
(
2017
).
57.
Z.
Liu
,
J.
Yang
,
J.
Du
,
Z.
Hu
,
T.
Shi
,
Z.
Zhang
,
Y.
Liu
,
X.
Tang
,
Y.
Leng
, and
R.
Li
, “
Robust subwavelength single-mode perovskite nanocuboid laser
,”
ACS Nano
12
,
5923
5931
(
2018
).
58.
A.
Zhizhchenko
,
S.
Syubaev
,
A.
Berestennikov
,
A. V.
Yulin
,
A.
Porfirev
,
A.
Pushkarev
,
I.
Shishkin
,
K.
Golokhvast
,
A. A.
Bogdanov
,
A. A.
Zakhidov
,
Y.
Kivshar
, and
S.
Makarov
, “
Single-mode lasing from imprinted halide-perovskite microdisks
,”
ACS Nano
13
,
4140
4147
(
2019
).
59.
A. B.
Evlyukhin
,
C.
Reinhardt
, and
B. N.
Chichkov
, “
Multipole light scattering by nonspherical nanoparticles in the discrete dipole approximation
,”
Phys. Rev. B
84
,
235429
(
2011
).
60.
I.
Staude
,
A. E.
Miroshnichenko
,
M.
Decker
,
N. T.
Fofang
,
S.
Liu
,
E.
Gonzales
,
J.
Dominguez
,
T. S.
Luk
,
D. N.
Neshev
,
I.
Brener
, and
Y.
Kivshar
, “
Tailoring directional scattering through magnetic and electric resonances in subwavelength silicon nanodisks
,”
ACS Nano
7
,
7824
7832
(
2013
).
61.
K.
Baryshnikova
,
D.
Smirnova
,
B.
Luk'yanchuk
, and
Y.
Kivshar
, “
Optical anapoles: Concepts and applications
,”
Adv. Opt. Mater.
7
,
1801350
(
2019
).
62.
P.
Terekhov
,
H.
Shamkhi
,
E.
Gurvitz
,
K.
Baryshnikova
,
A.
Evlyukhin
,
A.
Shalin
, and
A.
Karabchevsky
, “
Broadband forward scattering from dielectric cubic nanoantenna in lossless media
,”
Opt. Express
27
,
10924
10935
(
2019
).
63.
T.
Moss
, “
Relations between the refractive index and energy gap of semiconductors
,”
Phys. Status Solidi (b)
131
,
415
427
(
1985
).
64.
G.
Mie
, “
Beiträge zur optik trüber medien, speziell kolloidaler metallösungen
,”
Ann. Phys.
330
,
377
445
(
1908
).
65.
C. F.
Bohren
and
D. R.
Huffman
,
Absorption and Scattering of Light by Small Particles
(
Wiley-VCH
,
1998
), p.
544
.
66.
R.
Alaee
,
C.
Rockstuhl
, and
I.
Fernandez-Corbaton
, “
An electromagnetic multipole expansion beyond the long-wavelength approximation
,”
Opt. Commun.
407
,
17
21
(
2018
).
67.
M.
Kerker
,
D.-S.
Wang
, and
C.
Giles
, “
Electromagnetic scattering by magnetic spheres
,”
JOSA
73
,
765
767
(
1983
).
68.
M.
Decker
,
I.
Staude
,
M.
Falkner
,
J.
Dominguez
,
D. N.
Neshev
,
I.
Brener
,
T.
Pertsch
, and
Y. S.
Kivshar
, “
High-efficiency dielectric Huygens' surfaces
,”
Adv. Opt. Mater.
3
,
813
820
(
2015
).
69.
M.
Limonov
,
M.
Rybin
,
A.
Poddubny
, and
Y.
Kivshar
, “
Fano resonances in photonics
,”
Nat. Photonics
11
,
543
554
(
2017
).
70.
C.
Hsu
,
B.
Zhen
,
A.
Stone
,
J.
Joannopoulos
, and
M.
Soljacić
, “
Bound states in the continuum
,”
Nat. Rev. Mater.
1
,
16048
(
2016
).
71.
A.
Kodigala
,
T.
Lepetit
,
Q.
Gu
,
B.
Bahari
,
Y.
Fainman
, and
B.
Kanté
, “
Lasing action from photonic bound states in continuum
,”
Nature
541
,
196
199
(
2017
).
72.
M.
Rybin
and
Y.
Kivshar
, “
Supercavity lasing
,”
Nature
541
,
164
165
(
2017
).
73.
C.
Hsu
,
B.
Zhen
,
J.
Lee
,
S.
Chua
,
S.
Johnson
, and
J.
Joannopoulos
, “
Observation of trapped light within the radiation continuum
,”
Nature
499
,
188
191
(
2013
).
74.
F.
Monticone
and
A.
Alu
, “
Embedded photonic eigenvalues in 3d nanostructures
,”
Phys. Rev. Lett.
112
,
213903
(
2014
).
75.
Y.
Jiang
,
X.
Wang
, and
A.
Pan
, “
Properties of excitons and photogenerated charge carriers in metal halide perovskites
,”
Adv. Mater.
2019
,
1806671
(published online).
76.
M. N.
Saha
, “
On a physical theory of stellar spectra
,”
Proc. R. Soc. London
99
,
135
153
(
1921
).
77.
V.
D'innocenzo
,
G.
Grancini
,
M. J.
Alcocer
,
A. R. S.
Kandada
,
S. D.
Stranks
,
M. M.
Lee
,
G.
Lanzani
,
H. J.
Snaith
, and
A.
Petrozza
, “
Excitons versus free charges in organo-lead tri-halide perovskites
,”
Nat. Commun.
5
,
3586
(
2014
).
78.
J. S.
Manser
,
J. A.
Christians
, and
P. V.
Kamat
, “
Intriguing optoelectronic properties of metal halide perovskites
,”
Chem. Rev.
116
,
12956
13008
(
2016
).
79.
T. J.
Evans
,
A.
Schlaus
,
Y.
Fu
,
X.
Zhong
,
T. L.
Atallah
,
M. S.
Spencer
,
L. E.
Brus
,
S.
Jin
, and
X.-Y.
Zhu
, “
Continuous-wave lasing in cesium lead bromide perovskite nanowires
,”
Adv. Opt. Mater.
6
,
1700982
(
2018
).
80.
S.
Zhang
,
Q.
Shang
,
W.
Du
,
J.
Shi
,
Z.
Wu
,
Y.
Mi
,
J.
Chen
,
F.
Liu
,
Y.
Li
,
M.
Liu
 et al., “
Strong exciton–photon coupling in hybrid inorganic–organic perovskite micro/nanowires
,”
Adv. Opt. Mater.
6
,
1701032
(
2018
).
81.
A. P.
Schlaus
,
M. S.
Spencer
,
K.
Miyata
,
F.
Liu
,
X.
Wang
,
I.
Datta
,
M.
Lipson
,
A.
Pan
, and
X.-Y.
Zhu
, “
How lasing happens in cspbbr 3 perovskite nanowires
,”
Nat. Commun.
10
,
265
(
2019
).
82.
Q.
Wei
,
X.
Li
,
C.
Liang
,
Z.
Zhang
,
J.
Guo
,
G.
Hong
,
G.
Xing
, and
W.
Huang
, “
Recent progress in metal halide perovskite micro-and nanolasers
,”
Adv. Opt. Mater.
7
(
17
),
1900080
(
2019
).
83.
J. M.
Richter
,
M.
Abdi-Jalebi
,
A.
Sadhanala
,
M.
Tabachnyk
,
J. P.
Rivett
,
L. M.
Pazos-Outón
,
K. C.
Gödel
,
M.
Price
,
F.
Deschler
, and
R. H.
Friend
, “
Enhancing photoluminescence yields in lead halide perovskites by photon recycling and light out-coupling
,”
Nat. Commun.
7
,
13941
(
2016
).
84.
S. D.
Stranks
,
V. M.
Burlakov
,
T.
Leijtens
,
J. M.
Ball
,
A.
Goriely
, and
H. J.
Snaith
, “
Recombination kinetics in organic-inorganic perovskites: Excitons, free charge, and subgap states
,”
Phys. Rev. Appl.
2
,
034007
(
2014
).
85.
F.
Deschler
,
M.
Price
,
S.
Pathak
,
L. E.
Klintberg
,
D.-D.
Jarausch
,
R.
Higler
,
S.
Hüttner
,
T.
Leijtens
,
S. D.
Stranks
,
H. J.
Snaith
,
M.
Atatüre
,
R. T.
Phillips
, and
R. H.
Friend
, “
High photoluminescence efficiency and optically pumped lasing in solution-processed mixed halide perovskite semiconductors
,”
J. Phys. Chem. Lett.
5
,
1421
1426
(
2014
).
86.
I. L.
Braly
,
D. W.
deQuilettes
,
L. M.
Pazos-Outón
,
S.
Burke
,
M. E.
Ziffer
,
D. S.
Ginger
, and
H. W.
Hillhouse
, “
Hybrid perovskite films approaching the radiative limit with over 90% photoluminescence quantum efficiency
,”
Nat. Photonics
12
,
355
361
(
2018
).
87.
Y.
Cao
,
N.
Wang
,
H.
Tian
,
J.
Guo
,
Y.
Wei
,
H.
Chen
,
Y.
Miao
,
W.
Zou
,
K.
Pan
,
Y.
He
,
H.
Cao
,
Y.
Ke
,
M.
Xu
,
Y.
Wang
,
M.
Yang
,
K.
Du
,
Z.
Fu
,
D.
Kong
,
D.
Dai
,
Y.
Jin
,
G.
Li
,
H.
Li
,
Q.
Peng
,
J.
Wang
, and
W.
Huang
, “
Perovskite light-emitting diodes based on spontaneously formed submicrometre-scale structures
,”
Nature
562
,
249
(
2018
).
88.
X.
Zambrana-Puyalto
and
N.
Bonod
, “
Purcell factor of spherical Mie resonators
,”
Phys. Rev. B
91
,
195422
(
2015
).
89.
P.
Tonkaev
,
G.
Zograf
, and
S.
Makarov
, “
Optical cooling of lead halide perovskite nanoparticles enhanced by Mie resonances
,”
Nanoscale
(published online).
90.
E. Y.
Tiguntseva
,
K. L.
Koshelev
,
A. D.
Furasova
,
V. Y.
Mikhailovskii
,
E. V.
Ushakova
,
D. G.
Baranov
,
T. O.
Shegai
,
A. A.
Zakhidov
,
Y. S.
Kivshar
, and
S. V.
Makarov
, “
Single-particle Mie-resonant all-dielectric nanolasers
,” preprint arXiv:1905.08646 (
2019
).
91.
J.
Shainline
,
S.
Elston
,
Z.
Liu
,
G.
Fernandes
,
R.
Zia
, and
J.
Xu
, “
Subwavelength silicon microcavities
,”
Opt. Express
17
,
23323
23331
(
2009
).
92.
M. V.
Rybin
,
K. L.
Koshelev
,
Z. F.
Sadrieva
,
K. B.
Samusev
,
A. A.
Bogdanov
,
M. F.
Limonov
, and
Y. S.
Kivshar
, “
High-Q supercavity modes in subwavelength dielectric resonators
,”
Phys. Rev. Lett.
119
,
243901
(
2017
).
93.
H.
Huang
,
A. S.
Susha
,
S. V.
Kershaw
,
T. F.
Hung
, and
A. L.
Rogach
, “
Control of emission color of high quantum yield CH3NH3PbBr3 perovskite quantum dots by precipitation temperature
,”
Adv. Sci.
2
,
1500194
(
2015
).
94.
A.
Berestennikov
,
Y.
Li
,
I.
Iorsh
,
A.
Zakhidov
,
A.
Rogach
, and
S.
Makarov
, “
Beyond quantum confinement: Excitonic nonlocality in halide perovskite nanoparticles with Mie resonances
,”
Nanoscale
11
,
6747
6754
(
2019
).
95.
E. Y.
Tiguntseva
,
D. G.
Baranov
,
A. P.
Pushkarev
,
B.
Munkhbat
,
F.
Komissarenko
,
M.
Franckevicius
,
A. A.
Zakhidov
,
T.
Shegai
,
Y. S.
Kivshar
, and
S. V.
Makarov
, “
Tunable hybrid Fano resonances in halide perovskite nanoparticles
,”
Nano Lett.
18
,
5522
5529
(
2018
).
96.
B.
Zhou
,
H.
Dong
,
M.
Jiang
,
W.
Zheng
,
L.
Sun
,
B.
Zhao
,
B.
Tang
,
A.
Pan
, and
L.
Zhang
, “
Single-mode lasing and 3D confinement from perovskite micro-cubic cavity
,”
J. Mater. Chem. C
6
,
11740
11748
(
2018
).
97.
M. S.
Alias
,
Y.
Yang
,
T. K.
Ng
,
I.
Dursun
,
D.
Shi
,
M. I.
Saidaminov
,
D.
Priante
,
O. M.
Bakr
, and
B. S.
Ooi
, “
Enhanced etching, surface damage recovery, and submicron patterning of hybrid perovskites using a chemically gas-assisted focused-ion beam for subwavelength grating photonic applications
,”
J. Phys. Chem. Lett.
7
,
137
142
(
2016
).
98.
N.
Zhang
,
W.
Sun
,
S. P.
Rodrigues
,
K.
Wang
,
Z.
Gu
,
S.
Wang
,
W.
Cai
,
S.
Xiao
, and
Q.
Song
, “
Highly reproducible organometallic halide perovskite microdevices based on top-down lithography
,”
Adv. Mater.
29
,
1606205
(
2017
).
99.
Z.
Duan
,
Y.
Wang
,
G.
Li
,
S.
Wang
,
N.
Yi
,
S.
Liu
,
S.
Xiao
, and
Q.
Song
, “
Chip-scale fabrication of uniform lead halide perovskites microlaser array and photodetector array
,”
Laser Photonics Rev.
12
,
1700234
(
2018
).
100.
B.
Gholipour
,
G.
Adamo
,
D.
Corecchia
,
H. N. S.
Krishnamoorthy
,
M. D.
Birowosuto
,
N. I.
Zheludev
, and
C.
Soci
, “
Organometallic perovskite metasurfaces
,”
Adv. Mater.
29
,
1604268
(
2017
).
101.
S.
Chen
,
K.
Roh
,
J.
Lee
,
W. K.
Chong
,
Y.
Lu
,
N.
Mathews
,
T. C.
Sum
, and
A.
Nurmikko
, “
A photonic crystal laser from solution based organo-lead iodide perovskite thin films
,”
ACS Nano
10
,
3959
3967
(
2016
).
102.
Y.
Gao
,
C.
Huang
,
C.
Hao
,
S.
Sun
,
L.
Zhang
,
C.
Zhang
,
Z.
Duan
,
K.
Wang
,
Z.
Jin
,
N.
Zhang
,
A. V.
Kildishev
,
C.-W.
Qiu
,
Q.
Song
, and
S.
Xiao
, “
Lead-halide perovskite nanostructures for dynamic color display
,”
ACS Nano
12
,
8847
8854
(
2018
).
103.
S.
Wang
,
Y.
Liu
,
G.
Li
,
J.
Zhang
,
N.
Zhang
,
S.
Xiao
, and
Q.
Song
, “
Lead halide perovskite based microdisk lasers for on-chip integrated photonic circuits
,”
Adv. Opt. Mater.
6
,
1701266
(
2018
).
104.
H.
Wang
,
R.
Haroldson
,
B.
Balachandran
,
A.
Zakhidov
,
S.
Sohal
,
J. Y.
Chan
,
A.
Zakhidov
, and
W.
Hu
, “
Nanoimprinted perovskite nanograting photodetector with improved efficiency
,”
ACS Nano
10
,
10921
10928
(
2016
).
105.
Z.
Li
,
J.
Moon
,
A.
Gharajeh
,
R.
Haroldson
,
R.
Hawkins
,
W.
Hu
,
A.
Zakhidov
, and
Q.
Gu
, “
Room-temperature continuous-wave operation of organometal halide perovskite lasers
,”
ACS Nano
12
(
11
),
10968
10976
(
2018
).
106.
H.
Wang
,
S.-C.
Liu
,
B.
Balachandran
,
J.
Moon
,
R.
Haroldson
,
Z.
Li
,
A.
Ishteev
,
Q.
Gu
,
W.
Zhou
,
A.
Zakhidov
, and
W.
Hu
, “
Nanoimprinted perovskite metasurface for enhanced photoluminescence
,”
Opt. Express
25
,
A1162
A1171
(
2017
).
107.
E.
Tiguntseva
,
A.
Chebykin
,
A.
Ishteev
,
R.
Haroldson
,
B.
Balachandran
,
E.
Ushakova
,
F.
Komissarenko
,
H.
Wang
,
V.
Milichko
,
A.
Tsypkin
,
D.
Zuev
,
W.
Hu
,
S.
Makarov
, and
A.
Zakhidov
, “
Resonant silicon nanoparticles for enhancement of light absorption and photoluminescence from hybrid perovskite films and metasurfaces
,”
Nanoscale
9
,
12486
12493
(
2017
).
108.
H.
Chew
, “
Radiation and lifetimes of atoms inside dielectric particles
,”
Phys. Rev. A
38
,
3410
(
1988
).
109.
C.
Platts
,
M.
Kaliteevski
,
S.
Brand
,
R.
Abram
,
I.
Iorsh
, and
A.
Kavokin
, “
Whispering-gallery exciton polaritons in submicron spheres
,”
Phys. Rev. B
79
,
245322
(
2009
).
110.
V. M.
Agranovich
and
V. L.
Ginzburg
,
Crystaloptics under Consideration of Spatial Dispersion and Theory of Excitons
(
Nauka
,
1965
).
111.
J.
Proust
,
F.
Bedu
,
B.
Gallas
,
I.
Ozerov
, and
N.
Bonod
, “
All-dielectric colored metasurfaces with silicon mie resonators
,”
ACS Nano
10
,
7761
7767
(
2016
).
112.
X.
Zhu
,
W.
Yan
,
U.
Levy
,
N. A.
Mortensen
, and
A.
Kristensen
, “
Resonant laser printing of structural colors on high-index dielectric metasurfaces
,”
Sci. Adv.
3
,
e1602487
(
2017
).
113.
C.
Zhang
,
S.
Xiao
,
Y.
Wang
,
Y.
Gao
,
Y.
Fan
,
C.
Huang
,
N.
Zhang
,
W.
Yang
, and
Q.
Song
, “
Lead halide perovskite-based dynamic metasurfaces
,”
Laser Photonics Rev.
13
,
1900079
(
2019
).
114.
E. T.
Hoke
,
D. J.
Slotcavage
,
E. R.
Dohner
,
A. R.
Bowring
,
H. I.
Karunadasa
, and
M. D.
McGehee
, “
Reversible photo-induced trap formation in mixed-halide hybrid perovskites for photovoltaics
,”
Chem. Sci.
6
,
613
617
(
2015
).
115.
I. V.
Shadrivov
,
M.
Lapine
, and
Y. S.
Kivshar
,
Nonlinear, Tunable and Active Metamaterials
(
Springer
,
2015
), Vol.
1
.
116.
S. V.
Makarov
,
V.
Milichko
,
E. V.
Ushakova
,
M.
Omelyanovich
,
A. C.
Pasaran
,
R.
Haroldson
,
B.
Balachandran
,
H.
Wang
,
W.
Hu
,
Y. S.
Kivshar
, and
A. A.
Zakhidov
, “
Multifold emission enhancement in nanoimprinted hybrid perovskite metasurfaces
,”
ACS Photonics
4
,
728
735
(
2017
).
117.
Y.
Fan
,
Y.
Wang
,
N.
Zhang
,
W.
Sun
,
Y.
Gao
,
C.-W.
Qiu
,
Q.
Song
, and
S.
Xiao
, “
Resonance-enhanced three-photon luminesce via lead halide perovskite metasurfaces for optical encoding
,”
Nat. Commun.
10
,
2085
(
2019
).
118.
A.
Chanana
,
X.
Liu
,
C.
Zhang
,
Z. V.
Vardeny
, and
A.
Nahata
, “
Ultrafast frequency-agile terahertz devices using methylammonium lead halide perovskites
,”
Sci. Adv.
4
,
eaar7353
(
2018
).
119.
M.
Manjappa
,
Y. K.
Srivastava
,
A.
Solanki
,
A.
Kumar
,
T. C.
Sum
, and
R.
Singh
, “
Hybrid lead halide perovskites for ultrasensitive photoactive switching in terahertz metamaterial devices
,”
Adv. Mater.
29
,
1605881
(
2017
).
120.
J. J.
Coleman
,
J. D.
Young
, and
A.
Garg
, “
Semiconductor quantum dot lasers: A tutorial
,”
J. Lightwave Technol.
29
,
499
510
(
2011
).
121.
Y.
Jia
,
R. A.
Kerner
,
A. J.
Grede
,
B. P.
Rand
, and
N. C.
Giebink
, “
Continuous-wave lasing in an organic–inorganic lead halide perovskite semiconductor
,”
Nat. Photonics
11
,
784
(
2017
).
122.
D. J.
Slotcavage
,
H. I.
Karunadasa
, and
M. D.
McGehee
, “
Light-induced phase segregation in halide-perovskite absorbers
,”
ACS Energy Lett.
1
,
1199
1205
(
2016
).
123.
J.
Mao
,
W. E.
Sha
,
H.
Zhang
,
X.
Ren
,
J.
Zhuang
,
V. A.
Roy
,
K. S.
Wong
, and
W. C.
Choy
, “
Novel direct nanopatterning approach to fabricate periodically nanostructured perovskite for optoelectronic applications
,”
Adv. Funct. Mater.
27
,
1606525
(
2017
).
124.
S. Y.
Lee
,
S.-H.
Kim
,
Y. S.
Nam
,
J. C.
Yu
,
S.
Lee
,
D. B.
Kim
,
E. D.
Jung
,
J.-H.
Woo
,
S-m
Ahn
,
S.
Lee
,
K.-J.
Choi
,
J.-Y.
Kim
, and
M. H.
Song
, “
Flexibility of semitransparent perovskite light-emitting diodes investigated by tensile properties of the perovskite layer
,”
Nano Lett.
19
,
971
976
(
2019
).
125.
A.
Vaskin
,
J.
Bohn
,
K. E.
Chong
,
T.
Bucher
,
M.
Zilk
,
D.-Y.
Choi
,
D. N.
Neshev
,
Y. S.
Kivshar
,
T.
Pertsch
, and
I.
Staude
, “
Directional and spectral shaping of light emission with Mie-resonant silicon nanoantenna arrays
,”
ACS Photonics
5
,
1359
1364
(
2018
).
126.
A.
Vaskin
,
S.
Mashhadi
,
M.
Steinert
,
K. E.
Chong
,
D.
Keene
,
S.
Nanz
,
A.
Abass
,
E.
Rusak
,
D.-Y.
Choi
,
I.
Fernandez-Corbaton
 et al., “
Manipulation of magnetic dipole emission from Eu3+ with Mie-resonant dielectric metasurfaces
,”
Nano Lett.
19
,
1015
1022
(
2019
).
127.
F.
Yaraş
,
H.
Kang
, and
L.
Onural
, “
State of the art in holographic displays: A survey
,”
J. Disp. Technol.
6
,
443
454
(
2010
).
128.
L.
Wang
,
S.
Kruk
,
H.
Tang
,
T.
Li
,
I.
Kravchenko
,
D. N.
Neshev
, and
Y. S.
Kivshar
, “
Grayscale transparent metasurface holograms
,”
Optica
3
,
1504
1505
(
2016
).
129.
G. E.
Eperon
,
V. M.
Burlakov
,
A.
Goriely
, and
H. J.
Snaith
, “
Neutral color semitransparent microstructured perovskite solar cells
,”
ACS Nano
8
,
591
598
(
2014
).
130.
W.
Zhang
,
M.
Anaya
,
G.
Lozano
,
M. E.
Calvo
,
M. B.
Johnston
,
H.
Míguez
, and
H. J.
Snaith
, “
Highly efficient perovskite solar cells with tunable structural color
,”
Nano Lett.
15
,
1698
1702
(
2015
).
131.
D.
Gets
,
D.
Saranin
,
A.
Ishteev
,
R.
Haroldson
,
E.
Danilovskiy
,
S.
Makarov
, and
A.
Zakhidov
, “
Light-emitting perovskite solar cell with segregation enhanced self doping
,”
Appl. Surf. Sci.
476
,
486
492
(
2019
).
132.
A.
Tittl
,
A.
Leitis
,
M.
Liu
,
F.
Yesilkoy
,
D.-Y.
Choi
,
D. N.
Neshev
,
Y. S.
Kivshar
, and
H.
Altug
, “
Imaging-based molecular barcoding with pixelated dielectric metasurfaces
,”
Science
360
,
1105
1109
(
2018
).
133.
F.
Yesilkoy
,
E. R.
Arvelo
,
Y.
Jahani
,
M.
Liu
,
A.
Tittl
,
V.
Cevher
,
Y.
Kivshar
, and
H.
Altug
, “
Ultrasensitive hyperspectral imaging and biodetection enabled by dielectric metasurfaces
,”
Nat. Photonics
13
,
390
396
(
2019
).
134.
Z.
Yang
,
J.
Lu
,
M.
ZhuGe
,
Y.
Cheng
,
J.
Hu
,
F.
Li
,
S.
Qiao
,
Y.
Zhang
,
G.
Hu
,
Q.
Yang
,
D.
Peng
,
K.
Liu
, and
C.
Pan
, “
Controllable growth of aligned monocrystalline CsPbBr3 microwire arrays for piezoelectric-induced dynamic modulation of single-mode lasing
,”
Adv. Mater.
31
,
1900647
(
2019
).
135.
P.
Pringsheim
, “
Zwei bemerkungen über den unterschied von lumineszenz-und temperaturstrahlung
,”
Z. Phys.
57
,
739
746
(
1929
).
136.
R. I.
Epstein
,
M. I.
Buchwald
,
B. C.
Edwards
,
T. R.
Gosnell
, and
C. E.
Mungan
, “
Observation of laser-induced fluorescent cooling of a solid
,”
Nature
377
,
500
(
1995
).
137.
S.-T.
Ha
,
C.
Shen
,
J.
Zhang
, and
Q.
Xiong
, “
Laser cooling of organic–inorganic lead halide perovskites
,”
Nat. Photonics
10
,
115
(
2016
).
You do not currently have access to this content.