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1. Automated Materials Discovery Platform Realized: Scanning Probe Microscopy of Combinatorial Libraries

2. Reward driven workflows for unsupervised explainable analysis of phases and ferroic variants from atomically resolved imaging data

3. Reward based optimization of resonance-enhanced piezoresponse spectroscopy

4. Predicting Battery Capacity Fade Using Probabilistic Machine Learning Models With and Without Pre-Trained Priors

5. Ferro-ionic States and Domains Morphology in Hf$_x$Zr$_{1-x}$O$_2$ Nanoparticles

6. Rapid optimization in high dimensional space by deep kernel learning augmented genetic algorithms

7. Measurements with Noise: Bayesian Optimization for Co-optimizing Noise and Property Discovery in Automated Experiments

8. Unsupervised Reward-Driven Image Segmentation in Automated Scanning Transmission Electron Microscopy Experiments

9. Water Desalination by Ferroelectric Nanoparticles

10. Reentrant polar phase induced by the ferro-ionic coupling in Bi$_{1-x}$Sm$_x$FeO$_3$ nanoparticles

11. Machine Learning-Based Reward-Driven Tuning of Scanning Probe Microscopy: Towards Fully Automated Microscopy

12. Scientific Exploration with Expert Knowledge (SEEK) in Autonomous Scanning Probe Microscopy with Active Learning

13. Size Effect of Negative Capacitance State and Subthreshold Swing in Van der Waals Ferrielectric Field-Effect Transistors

14. Implementing dynamic high-performance computing supported workflows on Scanning Transmission Electron Microscope

15. Ferri-ionic Coupling in CuInP$_2$S$_6$ Nanoflakes: Polarization States and Controllable Negative Capacitance

16. Integration of Scanning Probe Microscope with High-Performance Computing: fixed-policy and reward-driven workflows implementation

17. Evolution of ferroelectric properties in SmxBi1-xFeO3 via automated Piezoresponse Force Microscopy across combinatorial spread libraries

18. Physics-based reward driven image analysis in microscopy

19. Bayesian Co-navigation: Dynamic Designing of the Materials Digital Twins via Active Learning

20. Building Workflows for Interactive Human in the Loop Automated Experiment (hAE) in STEM-EELS

21. Active Deep Kernel Learning of Molecular Functionalities: Realizing Dynamic Structural Embeddings

22. Phase diagrams and polarization reversal in nanosized Hf$_x$Zr$_{1-x}$O$_{2-y}$

23. Towards accelerating physical discovery via non-interactive and interactive multi-fidelity Bayesian Optimization: Current challenges and future opportunities

24. Coexistence and interplay of two ferroelectric mechanisms in Zn1-xMgxO

25. Co-orchestration of Multiple Instruments to Uncover Structure-Property Relationships in Combinatorial Libraries

26. Unraveling the Impact of Initial Choices and In-Loop Interventions on Learning Dynamics in Autonomous Scanning Probe Microscopy

31. Dynamic STEM-EELS for single atom and defect measurement during electron beam transformations

32. When the atoms dance: exploring mechanisms of electron-beam induced modifications of materials with machine-learning assisted high temporal resolution electron microscopy

33. Physics-driven discovery and bandgap engineering of hybrid perovskites

34. Human-in-the-loop: The future of Machine Learning in Automated Electron Microscopy

35. Ferroelectric Schottky diodes of CuInP$_2$S$_6$ nanosheet

36. The strain-induced transitions of the piezoelectric, pyroelectric and electrocaloric properties of the CuInP$_2$S$_6$ films

37. Strain-Induced Polarization Enhancement in BaTiO$_3$ Core-Shell Nanoparticles

38. The interplay between ferroelectricity and electrochemical reactivity on the surface of binary ferroelectric Al$_x$B$_{1-x}$N

39. An effective Landau-type model of Hf$_x$Zr$_{1-x}$O$_2$ thin film - graphene nanostructure

40. Bending-induced isostructural transitions in ultrathin layers of van der Waals ferrielectrics

41. Disentangling stress and curvature effects in layered 2D ferroelectric CuInP2S6

42. Anomalous Polarization Reversal in Strained Thin Films of CuInP$_2$S$_6$

43. A dynamic Bayesian optimized active recommender system for curiosity-driven Human-in-the-loop automated experiments

44. Deep Learning for Automated Experimentation in Scanning Transmission Electron Microscopy

45. Deep Kernel Methods Learn Better: From Cards to Process Optimization

46. Sub-10 nm Probing of Ferroelectricity in Heterogeneous Materials by Machine Learning Enabled Contact Kelvin Probe Force Microscopy

47. Roadmap on Deep Learning for Microscopy

48. Revealing intrinsic vortex-core states in Fe-based superconductors through machine-learning-driven discovery

49. Post-Experiment Forensics and Human-in-the-Loop Interventions in Explainable Autonomous Scanning Probe Microscopy

50. Combining Variational Autoencoders and Physical Bias for Improved Microscopy Data Analysis

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