Results 211 to 220 of about 8,055,585 (338)
Dissociating the Contributions of Frontal Eye Field Activity to Spatial Working Memory and Motor Preparation. [PDF]
Jonikaitis D, Noudoost B, Moore T.
europepmc +1 more source
Hafnium zirconium oxide thin films are grown using plasma‐enhanced atomic layer deposition with the addition of an atomic layer annealing (ALA) step. ALA leads to a change in the short‐range structure of the deposit and encourages formation of the ferroelectric Pca21 phase. The result is wake‐up‐free performance with films exposed to ALA.
Nicolas K. Lam +18 more
wiley +1 more source
Effect of Visual and Spatial Working Memory Load on Subitizing and Estimation. [PDF]
Formoso J +5 more
europepmc +1 more source
Physics‐Grounded Materials Artificial Intelligence for Reliable Materials Discovery
Physics‐Grounded Materials AI (PhysMat AI) integrates physical priors, descriptors, constraints, verification, and data infrastructure into a unified full‐stack framework, enabling reliable, interpretable, and autonomous AI‐driven materials discovery.
Yuhang Wang +3 more
wiley +1 more source
Increasing spatial working memory in mice with Akkermansia muciniphila. [PDF]
Ahn JS +4 more
europepmc +1 more source
Awareness of the relative quality of spatial working memory representations. [PDF]
Li AY, Sprague TC.
europepmc +1 more source
Electrically Induced Phase Transition and Synaptic Functionality in MoTe2/Graphene Memristors
An electrically induced reversible 2H ↔ 1T′ phase transition is demonstrated in a vertical Au/Ti/MoTe2/graphene memristor with a laterally contacted graphene electrode. Resistive switching proceeds through a compositionally invariant amorphous/2H ↔ amorphous/1T′ transformation, in which a self‐formed amorphous MoTe2 interfacial region is proposed to ...
Chien‐Hua Wang +7 more
wiley +1 more source
Olfactory bulb differently synchronizes ventral hippocampus-medial prefrontal cortex circuit during spatial working memory across social dominance hierarchies. [PDF]
Bakhshi Jifroudi E +5 more
europepmc +1 more source
Keratin recovered from animal‐hair textile waste is fractionated and blended with cellulose to produce continuously spun hybrid fibers. Selecting the high‐molecular‐weight keratin fraction enables 30 wt.% keratin incorporation while maintaining high strength in dry and wet states.
Mian Zhai +6 more
wiley +1 more source

