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Photonics Inc v a near wavelength diffraction gratings
V A Near Wavelength Diffraction Gratings, supplied by Photonics Inc, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/diffraction+grating/diffraction+gratings/pm41880191-237-22-10
Average 86 stars, based on 1 article reviews
v a near wavelength diffraction gratings - by Bioz Stars, 2026-09
86/100 stars

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Article Title: Simulation of the spatial distribution of scattered light under illumination of a resonant diffraction grating with structured light
Article Snippet: Kapitonov 2 1 IPSI RAS – Branch of the FSRC “Crystallography and Photonics” RAS, 443001, Samara, Russia, Molodogvardeyskaya 151; 2 Saint Petersburg State University, 198504, Russia, Saint-Petersburg, Ulyanovskaya st. 1 Abstract In this paper, a comparative theoretical analysis and numerical simulation of the operation of various types of diffraction gratings in the far field is carried out using a Fourier transform.

Article Title: Wide-Spectrum Tuning and Narrowing of 780 nm Broad-Area Diode Laser with Littrow-Type Transmission Gratings
Article Snippet: Photonics 2024, 11, x FOR PEER REVIEW 2 of 8 diffraction gratings to narrow the linewidth of high‐power stacks [16].

Article Title: Experimental Analysis of the Spectral Reflectivity of Metallic Blazed Diffraction Gratings in the THz Range for Space Instrumentation
Article Snippet: Available: https://digital.csic.es/bitstream/10261/47984/ 1/Fabricaci%C3%B3n%20de%20redes.pdf [20] R. Paschotta, “Diffraction gratings,” RP Photonics Encyclopedia.

Article Title: Chiral Liquid-Crystal-Based Concave Holographic Spectrometer on a Curved Substrate.
Article Snippet: Chiral liquid crystals (CLCs) self-assemble into a helical structure and can efficiently reflect circularly polarized light with corresponding handedness.. Utilizing a curved glass substrate and polymerization of photoaligned CLCs, the operation of focusing and diffraction of incident light can be performed efficiently by a single component.. When focusing and diffraction in a planar CLC cell are combined between two glass plates, the imaging suffers from astigmatism in the resulting spectrum.

Article Title: Recording of the Multiplexed Bragg Diffraction Gratings for Waveguides Using Phase Mask
Article Snippet: Photonics 2020, 7, 97 3 of 8 Photonics 2020, 7, x FOR PEER REVIEW 2 of 8 diffraction gratings [3,8–11] with waveguide mode operation.

Article Title: Nanoengineered Spintronic-Metasurface Terahertz Emitters Enable Beam Steering and Full Polarization Control.
Article Snippet: The demand for emerging applications at the terahertz frequencies motivates the development of novel and multifunctional devices for the generation and manipulation of terahertz waves.. In this work, we report the realization of multifunctional spintronic-metasurface emitters, which allow simultaneous beam-steering and full polarization control over a broadband terahertz beam.. This is achieved through engineering individual meta-atoms with nanoscale magnetic heterostructures and, thus, implementing microscopical control over the laserinduced spin and charge dynamics.

Article Title: Multifold Enhancement of Chiroptical Sensing with Plasmonic Diffraction Gratings.
Article Snippet: The ability to detect and differentiate chiral substances according to their leftor right-handedness plays a crucial role in pharmacology, medicine, and biochemistry.. Usually, only an enantiomer with specific handedness is safe and has therapeutic action, whereas its mirror counterpart can be inefficient or even toxic.. Chiroptical sensing methods based on an angle-resolved surface plasmon resonance open prospects for detecting extremely low concentrations of chiral substances in real-time operations by stimulating intense light-matter interactions.

Expressing:

Article Title: Integrated coherent beam combining system for orbital-angular-momentum shift-keying-based free-space optical links
Article Snippet: .. In the last part, these multiplexed OAM modes will be decoupled by diffraction gratings, and the corresponding expression of demultiplexing results can be written as Advanced Photonics Nexus 036003-2 May∕Jun 2024 • Vol. ..



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(A) Chemical structure of 1 ; (B) MicroED structure of 1 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative <t>diffraction</t> pattern (658 mm) and crystal appearance (SA 5300x) of 1 under TEM. Scale bar: 2 µm; (D) Packing diagram in 1 , viewed along b ‐ or c ‐ axis. Hydrogen bonding interactions were presented in orange dashed lines.
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(A) Chemical structure of 1 ; (B) MicroED structure of 1 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 1 under TEM. Scale bar: 2 µm; (D) Packing diagram in 1 , viewed along b ‐ or c ‐ axis. Hydrogen bonding interactions were presented in orange dashed lines.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 1 ; (B) MicroED structure of 1 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 1 under TEM. Scale bar: 2 µm; (D) Packing diagram in 1 , viewed along b ‐ or c ‐ axis. Hydrogen bonding interactions were presented in orange dashed lines.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 9 ; (B) MicroED structure of 9 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 9 under TEM. Scale bar: 2 µm; (D) Weak C─H···O hydrogen bonding interaction for one molecule of 9 . (E) Packing diagram in 9 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in blue dashed lines.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 9 ; (B) MicroED structure of 9 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 9 under TEM. Scale bar: 2 µm; (D) Weak C─H···O hydrogen bonding interaction for one molecule of 9 . (E) Packing diagram in 9 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in blue dashed lines.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 2 ; (B) MicroED structure of 2 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 2 under TEM. Scale bar: 2 µm; (D) Polymorphic structures and packing diagram in 2 , viewed along b ‐axis. Hydrogen bonding interactions were presented in orange dashed lines. Hydrogen atoms not involved in contact were omitted for clarification.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 2 ; (B) MicroED structure of 2 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 2 under TEM. Scale bar: 2 µm; (D) Polymorphic structures and packing diagram in 2 , viewed along b ‐axis. Hydrogen bonding interactions were presented in orange dashed lines. Hydrogen atoms not involved in contact were omitted for clarification.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques: Clarification Assay

(A) Chemical structure of 4 ; (B) MicroED structure of 4 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 4 under TEM. Scale bar: 2 µm; (D) Packing diagram in 4 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in orange dashed lines.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 4 ; (B) MicroED structure of 4 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 4 under TEM. Scale bar: 2 µm; (D) Packing diagram in 4 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in orange dashed lines.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 5 ; (B) MicroED structure of 5 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 5 under TEM. Scale bar: 2 µm; (D) Packing diagram in 5 , viewed along the a ‐axis. π‐π and hydrogen bonding interactions were presented in orange dashed lines.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 5 ; (B) MicroED structure of 5 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 5 under TEM. Scale bar: 2 µm; (D) Packing diagram in 5 , viewed along the a ‐axis. π‐π and hydrogen bonding interactions were presented in orange dashed lines.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 6 ; (B) MicroED structure of 6 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 6 under TEM. Scale bar: 2 µm; (D) Packing diagram in 6 , viewed along a ‐ or b ‐axis. Hydrogen bonding interactions were presented in orange dashed lines. π‐π interactions were presented in green dashed lines. Hydrogen atoms not involved in contact were omitted for clarification.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 6 ; (B) MicroED structure of 6 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 6 under TEM. Scale bar: 2 µm; (D) Packing diagram in 6 , viewed along a ‐ or b ‐axis. Hydrogen bonding interactions were presented in orange dashed lines. π‐π interactions were presented in green dashed lines. Hydrogen atoms not involved in contact were omitted for clarification.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques: Clarification Assay

(A) Chemical structure of 7 ; (B) MicroED structure of 7 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 7 under TEM. Scale bar: 2 µm; (D) Packing diagram in 7 , viewed along the a ‐axis. Forms 1 and 2 were presented in purple and yellow, respectively. Hydrogen bonding interactions were presented in blue dashed lines.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 7 ; (B) MicroED structure of 7 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 7 under TEM. Scale bar: 2 µm; (D) Packing diagram in 7 , viewed along the a ‐axis. Forms 1 and 2 were presented in purple and yellow, respectively. Hydrogen bonding interactions were presented in blue dashed lines.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 8 ; (B) MicroED structure of 8 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 8 under TEM. Scale bar: 2 µm; (D) Packing diagram in 8 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in blue and green dashed lines. Water molecules were colored in purple balls.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 8 ; (B) MicroED structure of 8 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 8 under TEM. Scale bar: 2 µm; (D) Packing diagram in 8 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in blue and green dashed lines. Water molecules were colored in purple balls.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques:

(A) Chemical structure of 3 ; (B) MicroED structure of 3 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 3 under TEM. Scale bar: 2 µm; (D) Packing diagram in 3 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in orange and cyan dashed lines. Molecules were colored by their symmetries.

Journal: Small (Weinheim an Der Bergstrasse, Germany)

Article Title: Rapid Structural Analysis of Natural Products Using MicroED

doi: 10.1002/smll.202511875

Figure Lengend Snippet: (A) Chemical structure of 3 ; (B) MicroED structure of 3 , 2F o ‐F c density map was shown in a blue mesh at 3σ contour level; (C) Representative diffraction pattern (658 mm) and crystal appearance (SA 5300x) of 3 under TEM. Scale bar: 2 µm; (D) Packing diagram in 3 , viewed along the a ‐axis. Hydrogen bonding interactions were presented in orange and cyan dashed lines. Molecules were colored by their symmetries.

Article Snippet: The parallel beam (∼45.2% intensity) was tuned using a 500 nm diffraction grating replica (prod.# 673; Ted Pella, Inc.) and 70 μm objective aperture at the back focal plane.

Techniques: