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4. A consensus statement on detection of hippocampal sharp wave ripples and differentiation from other fast oscillations

7. Brain oscillations: Hippocampal–prefrontal ripples unfolded.

9. Nanostructured Fiber Optics for High Sensitivity, Minimally Invasive, Spatially-Resolved, Plasmonic Diagnosis and Therapeutics

11. Toward Plasmonic Neural Probes: SERS Detection of Neurotransmitters through Gold‐Nanoislands‐Decorated Tapered Optical Fibers with Sub‐10 nm Gaps (Adv. Mater. 11/2023)

14. Down to the Deep Brain Neurotransmitters Detection Using SERS Active Tapered Optical Fibers

18. Toward Plasmonic Neural Probes: SERS Detection of Neurotransmitters through Gold-Nanoislands-Decorated Tapered Optical Fibers with Sub-10 nm Gaps

22. Holographic Manipulation of Nanostructured Fiber Optics Enables Spatially-Resolved, Reconfigurable Optical Control of Plasmonic Local Field Enhancement and SERS

25. Holographic Manipulation of Nanostructured Fiber Optics Enables Spatially‐Resolved, Reconfigurable Optical Control of Plasmonic Local Field Enhancement and SERS (Small 23/2022)

31. The continued need for animals to advance brain research

35. Sublayer- and cell-type-specific neurodegenerative transcriptional trajectories in hippocampal sclerosis

36. An update to Hippocampome.org by integrating single-cell phenotypes with circuit function in vivo

37. The continued need for animals to advance brain research

38. The continued need for animals to advance brain research

39. The continued need for animals to advance brain research

40. The continued need for animals to advance brain research

45. Plasmonics on a Neural Implant: Engineering Light–Matter Interactions on the Nonplanar Surface of Tapered Optical Fibers.

47. A machine learning toolbox for the analysis of sharp-wave ripples reveal common features across species.

48. Threaded Structure of a Pathological Oblivion.

49. Potential factors influencing replay across CA1 during sharp-wave ripples.

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