Bibliography
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.
more..
Searching for
8875 results found.
A practical guide to time-resolved fluorescence microscopy and spectroscopy
Clark B.S., Silvernail I., Gordon K., Mogan A.N., Rolband L.A., Castaneda J.F., LeBlanc S.J.
bioRxiv, preprint (2024)
Reference to:
MicroTime 200, MultiHarp 150, SymPhoTime
Related to:
FCS, FLCS, FRET
Solid-phase synthesis as a tool to create exactly defined, branched polymer vectors for cell membrane targeting
Elter J.K., Lisčá̌ková V., Moravec O., Vragović M., Filipová M., Štep̌ánek P., Šácha P., Hruby M.
Macromolecules, Vol.057, p.1050-1071 (2024)
Reference to:
Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series), PicoHarp 300, SymPhoTime
Related to:
FCS, FLCS
The degradation mechanism of multi-resonance thermally activated delayed fluorescence materials
Jiang J., Lee J.Y.
Materials Today, Vol.068,p.204-233 (2023)
Reference to: FluoTime 200, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)
Device physics and applications of ternary organic photovoltaics
Huang X.
Dissertation University of Michigan (2023)
Reference to: PicoHarp 300
Charge-carrier dynamics and surface effects of one-dimensional cadmium-chalcogenide nanostructures
Patjens S.
Dissertation Universität Hamburg (2023)
Reference to: PicoHarp 300
Two synthetic tools to deepen the understanding of the influence of stereochemistry on the properties of Iridium (III) heteroleptic emitters
Babón J.C., Boudreault P.-L.T., Esteruelas M.A., Gaona M.A., Izquierdo S., Oliván M., Oñate E., Tsai J.-Y., Vélez A.
Inorganic Chemistry, Vol.062, p.19821 - 19837 (2023)
Reference to: FluoTime 300
Toward time resolved dynamic light scattering microscopy: retrieving particle size distributions at high temporal resolutions
Urquidi O., Barbosa N., Brazard J., Adachi T.B.M.
Review of Scientific Instruments, Vol.094, 083101 (2023)
Reference to: MultiHarp 150
Entangled photon correlations allow a continuous-wave laser diode to measure single-photon, time-resolved fluorescence
Harper N., Hickam B.P., He M., Cushing S.K.
The Journal of Physical Chemistry Letters, Vol.014, p.5805-5811 (2023)
Reference to: PicoHarp 300
Influence of the bismuth content on the optical properties and photoluminescence decay time in GaSbBi films
Smołka T., Rygala M., Hilska J., Puustinen J., Koivusalo E., Guina M., Motyka M.
ACS Omega, Vol.008, p.36355-36360 (2023)
Reference to: PicoHarp 300
Surface modification of 3D-printed micro- and macro-structures via in situ nitroxide-mediated radical photopolymerization
Wu X., Leuschel B., Nam N.H., Guillaneuf Y., Gigmes D., Clément J.-L., Spangenberg A.
Advanced Functional Materials, early view, 2312211 (2023)
Reference to:
MicroTime 200, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series), SymPhoTime
Related to:
FLIM
Reliability and accuracy of single-molecule FRET studies for characterization of structural dynamics and distances in proteins
Agam G., Gebhard C., Popara M., Mächtel R., Folz J., Ambrose B., Chamachi N., Chung S.Y., Craggs T.D., de Boer M., Grohmann D., Ha T., Hartmann A., Hendrix J., Hirschfeld V., Hübner C.G., Hugel T., Kammerer D., Kang H.-S., Kapanidis A.N., Krainer G., Kramm K., Lemke E.A., Lerner E., Margeat E., Martens K., Michaelis J., Mitra J., Moya Muñoz G.G., Quast R.B., Robb N.C., Sattler M., Schlierf M., Schneider J., Schröder T., Sefer A., Tan P.S., Thurn J., Tinnefeld P., van Noort J., Weiss S., Wendler N., Zijstra N., Barth A., Seidel 'C.A.M., Lamb D.C., Cordes T.
Nature Methods, Vol.020, p.532-535 (2023)
Reference to:
MicroTime 200, TimeHarp 100/200, HydraHarp 400, SymPhoTime
Related to:
FRET
Harnessing 2D ruddlesden–popper perovskite with polar organic cation for ultrasensitive multibit nonvolatile transistor-type photomemristors
Lai P.-T., Chen C.-Y., Lin H.-C., Chuang B.-Y., Kuo K.-H., Greve C.R., Su T.-K., Tan G.-H., Li C.-F., Huang S.-W., Hsiao K.-Y., Herzig E.M., Lu M.-Y., Huang Y.-C., Wong K.-T., Lin H.-W.
ACS Nano, Vol.017, p.25552-25564 (2023)
Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)
High resolution photon counting ranging method based on rotary scanning
Hanfu Z., Jie L., Qichang A., Jianli W.
Infrared and Laser Engineering, Vol.052 (2023)
Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)
CdSe/CdS nanoparticles with controlled fluorescence lifetimes for multiplexing in biomedical applications
Graf S.
Dissertation Universität Hamburg (2023)
Reference to:
FluoTime 300
Related to:
FLIM
Synthesis, shemical structure, and ground- and excited-state spectral characteristics of (Porphyrinato)(chloro)indium(III) and its complexes with C60 and pyridyl-substituted Fullero[60]pyrrolidine
Ovchenkova E.N., Bichan N.G., Lomova T.N.,
Russian Journal Of Inorganic Chemistry, Vol.068, p.1562-1570 (2023)
Reference to: FluoTime 300
Memlumor: a luminescent memory device for photonic neuromorphic computing
Maruchenko A., Kumar J., Kiligaridis A., Rao S.M., Tatarinov D., Matchenya I., Sapozhnikova E., Ji R., Telschow O., Brunner J., Pushkarev A., Vaynzof Y., Scheblykin I.G.
Optics (2023)
Reference to: Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series), PicoHarp 300, PMA Series
Crystals of 4,7-Di-2-thienyl-2,1,3-benzothiadiazole and its derivative with terminal trimethylsilyl substituents: synthesis, growth, structure, and optical-fluorescent properties
Postnikov V.A., Yurasik G.A., Kulishov A.A., Sorokin T.A., Lyasnikova M.S., Sorokina N.I., Skorotetcky M.S., Popova V.V., Levkov L.L., Borshchev O.V., Svidchenko E.A., Surin N.M., Ponomarenko S.A.
Crystals, Vol.013, 1697 (2023)
Reference to: FluoTime 300, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)
Water-soluble iridium (III) complexes as multicolor probes for one-photon, two-photon and fluorescence lifetime imaging
Ma Y., Zhang D., Lv W., Zhao Q., Wong W.-Y.
Journal of Organometallic Chemistry, Vol.992, 122697 (2023)
Reference to: SymPhoTime
Room temperature phosphorescence of 5,6-benzoquinoline
Chavez J., Ceresa L., Kitchner E., Pham D., Gryczynski Z., Gryczynski I.
Methods and Applications in Fluorescence, Vol.011, 025003 (2023)
Reference to: FluoTime 300
The CdS/CaTiO3 cubic core-shell composite towards enhanced photocatalytic hydrogen evolution and photodegradation
Yang H., Li X., Zhao T., Peng Q., Yang W., Cao J., Zheng Y., Li C., Pan J.
International Journal of Hydrogen Energy, Vol.048, p.21788-21798 (2023)
Reference to: FluoTime 300
Response of coccomyxa cimbrica sp.nov. to increasing doses of Cu(II) as a function of time: comparison between exposure in a microfluidic device or with standard protocols
Speghini R., Buscato C., Marcato S., Fortunati I., Baldan B., Ferrante C.
Sensors, Vol.013, 417 (2023)
Reference to: PicoHarp 300, SymPhoTime
Ionic liquid passivation for high-performance sky-blue quasi-2D perovskite light-emitting diodes
Sun J., Ren Z., Wang Z., Wang H., Wu D., Sun X.W., Choy W.C.H.
Advanced Optical Materials, Vol.011, 2202721 (2023)
Reference to:
FluoTime 300, Pulsed Diode Lasers (PDL Series, LDH-Series, LDH-FA Series)
Related to:
TRPL
Reversible facet reconstruction of CdSe/CdS core/shell nanocrystals by facet-ligand pairing
Lei H., Li T., Li J., Zhu J., Zhang H., Qin H., Kong X., Wang L., Peng X.
Journal of American Chemical Society, Vol.145, p.6798-6810 (2023)
Reference to: SPADs
A2Bn-1PbnI3n+1 (A = BA, PEA; B = MA, n = 1, 2): engineering quantum-well crystals for high density and fast scintillators
Sheikh A.K., Kowal D., Mahyuddin M.H., Cala R., Auffray E., Witkowski M.E., Makowski M., Drozdowski W., Wang H., Dujardin C-. Cortecchia D., Birowosuto M.D.
The Journal of Physical Chemistry C, Vol.127, p.10737-10747 (2023)
Reference to: HydraHarp 400
Non-line-of-sight imaging based on Archimedean spiral scanning
Zhang M., Shi Y., Sheng W., Liu J., Li J., Wei Y., Wang B., Zhang D. Liu Y.
Optics Communications, Vol.537, 129450 (2023)
Reference to: HydraHarp 400, SPADs