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Bibliography

Our instruments are used by top reserchers world wide, including recent nobel prize winners, such as W.E. Moerner and S.W. Hell. Our bibliography is a collection of papers that mention explicitly PicoQuant or at least one of our product's name. Searching or browsing through the bibliography allows to find out which laboratories use PicoQuant devices and what type of applications have been reported so far.

The bibliography contains articles mentioning explicitly PicoQuant or at least one of our product's name (e.g. MicroTime). Most of the references can be found easily by full-text searches on the internet. However, some papers cite us only indirectly, sometimes not at all. Such publications are included only if the use of a PicoQuant product is known, for example, based on communication with the author(s). There are certainly many more articles reporting results obtained using PicoQuant devices. Unfortunately, such papers are often hidden for us. Please help completing this list.
Do you miss your publication? If yes, we will be happy to include it in our bibliography. Please send an e-mail to info@picoquant.com containing the appropriate citation. Thank you very much in advance for your kind co-operation.

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8784 results found.


Recombination lifetimes of LiF: Mg, Cu, P for pulsed optically stimulated luminescence

Nyemann J.S., Balling P., Yukihara E.G.
Journal of Luminescence, Vol.234, 117924 (2021)

Reference to: TimeHarp 260


In vivo test-driven upgrade of a time domain multi-wavelength optical mammography

Maffeis G., Feroncino E., Dalla Mora A:, Pifferi A., Cubeddu R., Taroni P.
Biomedical Optics Express, Vol.012, p.1105-1122 (2021)

Reference to: MultiHarp 150, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)


The scintillation mechanisms in Ce and Tb doped (GdxY1-x)Al2Ga3O12 quaternary garnet structure crystalline ceramics

Korzhik M., Borisevich A., Fedorov A., Gordienko E:, Karpyuk P., Dubov V., Sokolov P., Mikhlin A., Dosovitskiy G., Mechninsky V., Kozlov D., Uglov V.
Journal of Luminescence, Vol.234, 117933 (2021)

Reference to: FluoTime 200


Photon bunching of the nonlinear photoluminescence emitted by plasmonics metals

Malchow K., Bouhelier A.
Jounal of the Optical Society of America B, Vol.038, p.576-583 (2021)

Reference to: HydraHarp 400


Enhanced photodynamic inactivation of Staphylococcus Aureus with Schiff base substituted Zinc phthalocyanines through conjugation to silver nanoparticles

Sen P., Nyokong T.
Journal of Molecular Structure, Vol.1232, 130012 (2021)

Reference to: FluoTime 300


Exploring early time points of vimentin assembly in flow by fluorescence fluctuation spectroscopy

Perego E., Köster S.
Lab Chip, Vol.021, p.735-745 (2021)

Reference to: SPADs


Optimising optical tweezers experiments for magnetic resonance sensing with nanodiamonds

Russell L.W., Dossetor E.C., Wood A.A., Simpson D.A., Reece P.J.
ACS Photonics, Vol.008, p.1214-1221 (2021)

Reference to: SPADs


Hydrogen atom and water complex determine the excited state dynamics of 8-azaguanine

Xu T., Hu Z., Lv M., Zhou Z., Xu J., Sun Z., Sun H., Chen J.
Chemical Physics, Vol.544, 111118 (2021)

Reference to: PicoHarp 300


Large field-of-view nanometer-sectioning microscopy by using metal-induced energy transfer and biexponential lifetime analysis

Hwang W., Seo J., Kim D.E., Lee C.J., Choi I.-H., Yoo K.-H., Kim D.Y.
Communications Biology, Vol.004, 91 (2021)

Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)


Synthesis of pH-responsive triazine skeleton nano-polymer composite containing AIE group for drug delivery

Zhang Y., Peng X., Jing X., Cui L., Yang S., Wu J., Meng G., Liu Z., Guo X.
Frontiers of Materials Science, Vol.015, p.113-123 (2021)

Reference to: FluoTime 300


Antisolvent engineering on low-temperature processed CsPbI3 inorganic perovskite for improved performances of solar cells

Han B., Zhang L., Cao Y., Li B., Liu Z., Xu L., Wang P., Lin P., Wu X., Cui C.
Nanotechnology, Vol.032, 185402 (2021)

Reference to: FluoTime 300
Related to: TRPL


Hybrid 0D antimony halides as air-stable luminophores for high-spatial-resolution remote thermography

Morad V., Yakunin S., Benin B.M., Shynkarenko Y., Grotevent M.J., Shorubalko I., Boehme S.C., Kovalenko M.V.
Advanced Materials, Vol.033, 2007355 (2021)

Reference to: FluoTime 300, PicoHarp 300


Green InP/ZnSeS/ZnS core multi-shelled quantum dots synthesized with amonophosphine for effective display applications

Liu P., Lou Y., Ding S., Zhang W., Wu Z., Yang H., Xu B., Wang K., Sun X.W.
Advanced Functional Materials, Vol.031, 2008453 (2021)

Reference to: FluoTime 300


Optimised domain-engineered crystals for pure telecom photon sources

Pickston A., Graffitti F., Barrow P., Morrison C.L., Ho J., Brańczyk A.M., Fedrizzi A.
Optics Express, Vol. 029, p. 6991-7002 (2021)

Reference to: HydraHarp 400


Construction of Zeolite-loaded fluorescent supramolecular on-off probes for corrosion detection based on a cation exchange mechanism

Lv J., Yue Q.-X., Ding R., Han Q., Liu X., Liu J.-L., Yu H.-J., An K., Yu H.-B., Zhao X.-D.
Nanomaterials, Vol.011, 169 (2021)

Reference to: MicroTime 200


Singlet fission from upper excited singlet states and polaron formation in rubrene film

Wu T., Ni W., Gurzadyan G.G., Sun L.
RSC Advances, Vol.011, p.4639-4645 (2021)

Reference to: FluoFit, PicoHarp 300


Dual modulating luminescence in all-inorganic perovskite CsPbBr3 quantum dots

Ge W., Shi J., Xu M., Wu Y., Sugimoto H., Fujii M.
Optical Materials, Vol.113, 110822 (2021)

Reference to: FluoTime 100


Low photoactive phase temperature all-inorganic, tin-lead mixed perovskite solar cell

Kuan C.-H., Shen H.-H., Lin C.-F.
RSC Advances, Vol.011, p.3264-3271 (2021)

Reference to: FluoTime 100, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)


High-contrast fluorescence polarization microscopy through stimulated emission

Rehman K.U., Das S., Kao F.-J.
Applied Physics Express, Vol.014, 022008 (2021)

Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)


Morphology, photoexcitation dynamics and stability of water-dispersed nanoparticle films based on semiconducting copolymer

Ramoni M., Bassi M.D.J., Wouk L., Paacheco K.R.M., Fernández A.B., Renzi W., Duarte J.L., Rocco M.L.M., Roman L.S.
Thin Solid Films, Vol.721, 138536 (2021)

Reference to: FluoTime 200


Comparison of path-based centrality measures in protein-protein interaction networks revealed proteins with phenotypic relevance during adaptation to changing nitrogen environments

Gilbert M., Li Z., Wu X.N., Rohr L., Gombos S., Harter K., Schulze W.X.
Journal of Proteomics, Vol.235, 104114 (2021)

Reference to: TimeHarp 100/200, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)


Lab-on-microsphere - FRET-based multiplex sensor platform

Kuznetsova V., Osipova V., Tkach A., Miropoltsev M., Kurshanov D., Sokolova A., Cherevkov S., Zakharov V., Fedorov A., Baranov A., Gun’ko Y.
Nanomaterials, Vol.011, 109 (2021)

Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series), MicroTime 100
Related to: FRET


Role of annealing temperature of nickel oxide (NiOx) as hole transport layer in work function alignment with perovskite

Imran M., Coskun H., Khan N.A., Ouyang J.
Applied Physics A, Vol.127, 117 (2021)

Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series), PicoHarp 300


Dengue virus 2 capsid protein chaperones strand displacement without altering the capsid-coding region hairpin element's structural functionality

Yong X.E., Raghuvamsi P.V., Anand G.S., Wohland T., Sharma K.K.
bioRxiv, preprint (2021)

Reference to: MicroTime 200, TimeHarp 260, LSM Upgrade Kit, SymPhoTime


Intrinsic donor-bound excitons in ultraclean monolayer semiconductors

Rivera P., He M., Kim B., Liu S., Rubio-Verdú C., Moon H., Mennel L., Rhoades D.A., Yu H., Taniguchi T., Watanabe K., Yan J., Mandrus D.G., Dery H., Pasupathy A., Englund D., Hone J., Yao W., Xu X.
Nature Communications, Vol.012, 871 (2021)

Reference to: PicoHarp 300