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Electrocatalytic Reductive Amination of Aldehydes and Ketones with Aqueous Nitrite
Rational Design of Lanthanide-Binding Tags to Optimize Magnetic Anisotropy in Paramagnetic Protein NMR
Stabilization of Sb<sub>4</sub> Tetrahedra in Paramagnetic Transition Metal Carbonyl Complexes
A practical leap towards secure quantum communication over long distances
Exploiting Photohalide Generation in Shape and Multichromatic Color Patterning of Polymer–Perovskite Nanocomposites
Real-Time Observation of Ultrafast Concerted Dynamics between Energy and Chirality Transfer by Femtosecond Time-Resolved Circular Polarization Luminescence Spectroscopy
Poly(hydrazinophosphine diazide)s (PHPDs): Hybrid Organic–Inorganic Polymers via Polycondensation between PN Cages and Organic Diazides
Uncovering a Timescale Hierarchy by Studying the Brain in a Natural Context
As we train multiple generations of students to narrowly design clever, carefully controlled experiments in our confined lab spaces, we may fail to notice, as a field, that we have overlooked fundamental aspects of human cognition. This is a first-person account of how our research and understanding of the neural code were forever transformed when we decided to open the lab’s door to the natural world. This journey started with the decision to shift from controlled stimuli to natural dynamic and “messy” stimuli. This transition enabled us to focus on how information is accumulated and processed over time. As a result, we have discovered a new topographic mapping of the hierarchy of cortical processing timescales. I will conclude with a general observation of the paradigm shift occurring in the field as it increasingly emphasizes the study of the neural processes that underlie human behavior in natural, everyday contexts. I am excited to share this journey with you.