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Data related to publication "Coherent phase transfer for real-world twin-field quantum key distribution; Supplementary Information"
<p>These files contains datasets from which the Figures appearing in the Supplementary Information have been calculated. </p> <p>Description of datasets:</p> <p>Datasets related to SupplFig1 contain two columns: Frequency in Hz and phase noise in rad^2/Hz</p> <p>Data_SupplFig1_stabilised_fringes: psd of the phase noise calculated from the interference fringes in a stabilised condition</p> <p>Data_SupplFig1_unstabilised_fringes: psd of the phase noise calculated from the interference fringes in an unstabilised condition</p> <p>Data_SupplFig1_roundtrip_sensing_laser: psd of the sensing laser signal after a round-trip in the interferometer, calculated from self-heterodyne beatnote</p> <p>Data_SupplFig1_differential_roundtrip_sensing_vs_reference_laser: psd of the difference between the round-trip self-heterodyne beatnotes at the sensing and reference laser wavelengths</p> <p>Datasets related to SupplFig2 contain two columns: time in seconds and normalised intensity (calculated as detailed in the main publication).</p> <p>Data_SupplFig2_High_power_PD_free_evol: normalised intensity of the interference signal obtained with classical power level at the source. This trace was recorded with a photodiode when no artificial phase drift was applied</p> <p>Data_SupplFig2_High_power_PD_phase_drift: normalised intensity of the interference signal obtained with classical power level at the source. This trace was recorded with a photodiode when an artificial phase drift was applied (8pi/s)</p> <p>Data_SupplFig2_High_power_SPD_free_evol: normalised intensity of the interference signal obtained with classical power level at the source. This trace was recorded on an SPD (after suitable attenuation) when no artificial phase drift was applied </p> <p>Data_SupplFig2_High_power_SPD_phase_drift: normalised intensity of the interference signal obtained with classical power level at the source. This trace was recorded on an SPD (after suitable attenuation) when an artificial phase drift was applied (8pi/s)</p> <p>Data_SupplFig2_Attenuated_SPD_free_evol: normalised intensity of the interference signal obtained with attenuated beams at the source. This trace was recorded on an SPD when no artificial phase drift was applied </p> <p>Data_SupplFig2_Attenuated_SPD_phase_drift: : normalised intensity of the interference signal obtained with attenuated beams at the source. This trace was recorded on an SPD when an artificial phase drift was applied (8pi/s)</p> <p> </p>
Fig. 3 in A novel species of Heterophoxus Shoemaker, 1925 (Crustacea, Amphipoda, Phoxocephalidae) from southeast and southern Brazil, with an identification key to world species of the genus
Fig. 3. Heterophoxus shoemakeri sp. nov., holotype, ♀ (UERJ 433). A. Gnathopod 1. B. Gnathopod 2. C. Pereopod 3. D. Pereopod 4. Scale bars = 0.2 mm.
Fig. 2 in A novel species of Heterophoxus Shoemaker, 1925 (Crustacea, Amphipoda, Phoxocephalidae) from southeast and southern Brazil, with an identification key to world species of the genus
Fig. 2. Heterophoxus shoemakeri sp. nov., holotype, ♀ (UERJ 433). A. Head. B. Antenna 1. C. Antenna 2. D. Left mandible. E. Right mandible. F. Maxilliped. G. Maxilla 1. H. Maxilla 2. Scale bars: A = 0.5 mm; B–F = 0.2 mm; G–H = 0.1 mm.
Fig. 1 in A novel species of Heterophoxus Shoemaker, 1925 (Crustacea, Amphipoda, Phoxocephalidae) from southeast and southern Brazil, with an identification key to world species of the genus
Fig. 1. Heterophoxus shoemakeri sp. nov., habitus. A. Holotype, ♀ (UERJ 433). B. Paratype, ♂ (UERJ 434). Scale bars = 1.0 mm.
Figure 3 in New records and combinations in Neotropical Premnobius Eichhoff (Coleoptera: Curculionidae: Scolytinae: Ipini) with an illustrated key to New World species
Figure 3. Premnobius flechtmanni (Wood), female. A) Dorsal view. B) Lateral view. C) Frontal view. D) Declivity. Photos by T.H. Atkinson.
Fig. 9 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 9. Dinotrema teutoniaense Peris-Felipo sp. nov. (♀). A. Mesonotum, dorsal view. B. Propodeum, dorsal view. C. First metasomal tergite. D. Metasoma, hind leg and ovipositor, lateral view. E. Fore and hind wings.
Fig. 7 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 7. Dinotrema subbidentatum Peris-Felipo sp. nov. (♀). A. First metasomal tergite. B. Metasoma, hind leg and ovipositor, lateral view. C. Fore and hind wings.
Fig. 6 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 6. Dinotrema subbidentatum Peris-Felipo sp. nov. (♀). A. Head and mandible, lateral view. B. Face, frontal view. C. Antenna. D. Head and mesonotum, dorsal view. E. Head and mesosoma, lateral view. F. Propodeum, dorsal view.
Fig. 5 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 5. Dinotrema subbidentatum Peris-Felipo sp. nov. (A–D ♀; E–F ³). A. Habitus variety body light – metasoma short, lateral view. B. Habitus variety body dark – metasoma short, lateral view. C. Habitus variety body light – metasoma long, lateral view. D. Habitus variety body dark – metasoma long, lateral view. E. Habitus variety body light, lateral view. F. Habitus variety body dark, lateral view.
Fig. 8 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 8. Dinotrema teutoniaense Peris-Felipo sp. nov. (♀). A. Habitus, lateral view. B. Head, lateral view. C. Face and mandible, frontal view. D. Antenna. E. Head, dorsal view. F. Mesosoma, lateral view.
Fig. 3 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 3. Dinotrema plaumanni Peris-Felipo sp. nov. (A, C–F ♀; B ³). A–B. Habitus, lateral view. C. Face, mandible and mesosoma in lateral view. D. Antenna. E. Head, dorsal view. F. Head, lateral view and mesonotum, dorsal view.
Fig. 4 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 4. Dinotrema plaumanni Peris-Felipo sp. nov. (♀). A. Propodeum, dorsal view. B. First metasomal tergite. C. Metasoma, hind leg and ovipositor, lateral view. D. Fore and hind wings.
Fig. 10 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 10. Sculpture of propodeum. A. Dinotrema angusticorne (Fischer, 1969). B. Dinotrema bucculatricis (Fischer, 1969).
Fig. 2 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 2. Dinotrema multiareolatum Peris-Felipo sp. nov. (♀). A. Head, dorsal view. B. Mesosoma, lateral view. C. Head, sublateral view and mesonotum, dorsal view. D. Propodeum, dorsal view. E. First metasomal tergite. F. Fore and hind wings.
Fig. 1 in First record of the genus Dinotrema Foerster, 1862 (Hymenoptera, Braconidae, Alysiinae) from the Neotropical region, with description of four new species and a key to the New World taxa
Fig. 1. Dinotrema multiareolatum Peris-Felipo sp. nov. (A, C–F ♀; B ³). A–B. Habitus, lateral view. C. Head, lateral view. D. Mandible. E. Antenna. F. Face, frontal view.
Figure 3 Olopachys iraniensis n in A new species of Olopachys Berlese (Acari: Pachylaelapidae) from Iran with a key to the world species
Figure 3 Olopachys iraniensis n. sp. (female): A – Chelicera; B – sperm access system; C – tarsus II. Scale bar: 100 μm.
Figure 2 Olopachys iraniensis n in A new species of Olopachys Berlese (Acari: Pachylaelapidae) from Iran with a key to the world species
Figure 2 Olopachys iraniensis n. sp. (female): A – Ventral gnathosoma; B – Palp tarsus; C – Epistome. Scale bar: 100 μm for A and C; 50 μm for B.
Figure 1 Olopachys iraniensis n in A new species of Olopachys Berlese (Acari: Pachylaelapidae) from Iran with a key to the world species
Figure 1 Olopachys iraniensis n. sp. (female): A – Dorsal idiosoma; B – Ventral idiosoma. Scale bar: 100 μm.
Figure 4 in A new species of Olopachys Berlese (Acari: Pachylaelapidae) from Iran with a key to the world species
Figure 4 Tubes of the sperm access systems: A – Olopachysc ompositus; B – Olopachys caucasicus; C – Olopachys iraniensis n. sp. Scale bar: 50 μm.
Figs 14, 16–18, 20–22 in Three new species of the genus Notosemus Förster, 1869 (Hymenoptera, Ichneumonidae, Ichneumoninae) from China, with a key to the world species
Figs 14, 16–18, 20–22. Notosemus planus Sheng & Sun, sp. nov., holotype, ♀. 14. Head, dorsal view. 16. Pronotum. 17. Mesoscutum. 18. Mesosoma, lateral view. 20. Propodeum. 21. Metasoma, dorsal view. 22. Apical portion of metasoma, lateral view.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.