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IBM Research

It’s time for cryptography to get its own abstraction layer This could be the largest synthetic code dataset yet How to measure the performance of a quantum computer | IBM Quantum Computing Blog Release News: Qiskit v2.5 is here! | IBM Quantum Computing Blog CoFrGeNets replace the ‘bones’ of transformer-based models How training environments can teach AI models to misbehave Modeling the chemistry of fusion reactor material | IBM Quantum Computing Blog Ponder This Challenge - July 2026 - Return of the Superheroes Apply to IBM Quantum Developer Conference 2026 | IBM Quantum Computing Blog Qiskit Paulice: postselected quantum error correction | IBM Quantum Computing Blog What is IBM’s nanostack chip architecture? IBM introduces the smallest computer chip in the world A new playbook for quantum optimization benchmarking Running AI on mixed hardware for speed and affordability Explore next-gen quantum algorithms with IBM Quantum Credits | IBM Quantum Computing Blog Allstate explores quantum computing for insurance portfolios | IBM Quantum Computing Blog Can LLMs discover quantum error correction codes? Prototype and validate fermionic circuits faster with ffsim | IBM Quantum Computing Blog Bringing the power of semantic AI to IBM Db2 The fast Fourier transform, how and why it works Building AI more like software The future of quantum takes center stage at NY Tech Week Qiskit Fall Fest 2026: Applications open | IBM Quantum Computing Blog IBM to invest $10 billion in quantum computing | IBM Quantum Computing Blog Renowned mathematician Subhash Khot joins IBM Research Ponder This Challenge - June 2026 - The Superhero Team Movies New Classroom Accounts expand quantum access for educators | IBM Quantum Computing Blog Qiskit Global Summer School 2026: Registration now open | IBM Quantum Computing Blog How researchers built a record-setting quantum circuit | IBM Quantum Computing Blog IBM charts a new research path with MIT How IBM is using quantum computing to understand the operating system of the universe How to use sample-based quantum diagonalization on IBM hardware Quantum-centric supercomputing simulates 12,635-atom protein | IBM Quantum Computing Blog A decade of quantum on the cloud | IBM Quantum Computing Blog Ponder This Challenge - May 2026 - The Powers of a Binary Matrix Where the frontiers of high-speed racing and computing meet Introducing the IBM Granite 4.1 family of models Building the future of computing, together Next-generation algorithms could move fusion from the lab to the grid Bringing quantum-centric supercomputing to Illinois What’s new at IBM Quantum - Q1 2026 | IBM Quantum Computing Blog Release News: Qiskit v2.4 is here! | IBM Quantum Computing Blog How IBM Quantum is enabling healthcare and biology research | IBM Quantum Computing Blog How an extra training step can unlock AI’s reasoning power IBM demonstrates extreme scale for content-aware storage with a 100-billion vector database Ponder This Challenge - April 2026 - The Unlabeled Clock IBM Research and ETH Zurich open a new era of innovation IBM’s newest time-series models cover a full range of enterprise prediction tasks Toward a transparent supply chain for AI Quantum computers take a step into real materials science Donating llm-d to the Cloud Native Computing Foundation Cleveland Clinic & IBM debut new quantum simulation workflow | IBM Quantum Computing Blog Turning turbulence into transcripts Like the information in a dream: IBM’s Charles H. Bennett receives ACM Turing award Doubling down on open-access quantum computing | IBM Quantum Computing Blog Unveiling the first reference architecture for quantum-centric supercomputing Realizing Feynman’s vision for the future of simulation | IBM Quantum Computing Blog IBM is working today to secure communication from tomorrow’s quantum risks Building PyTorch-native support for the IBM Spyre Accelerator Quantum simulates properties of the first-ever half-Möbius molecule, designed by IBM and researchers A look back at the International Year of Quantum | IBM Quantum Computing Blog TerraStackAI: Bringing Earth and space AI to Red Hat and the world Ponder This Challenge - March 2026 - Path game on a hole-riddled chessboard IBM demonstrates High NA EUV process capability on track for insertion below 2 nm nodes at SPIE 2026 Quantum Advantage Tracker: the race to advantage | IBM Quantum Computing Blog
What’s new at IBM Quantum - Q2 2026 | IBM Quantum Computing Blog
2026-07-08 · via IBM Research

Run Cleveland Clinic's simulation workflow

A recent 12,635-atom protein simulation developed by Cleveland Clinic, RIKEN, and IBM sets a new milestone for quantum chemistry at scale. Explore some of the cutting-edge simulation methods leveraged in this work, now available open source through Qiskit Community.

View the repositoryRead the blog

Trypsin protein simulation — 12,635 atomsTrypsin protein simulation — 12,635 atomsTrypsin protein simulation — 12,635 atomsTrypsin protein simulation — 12,635 atoms

Simulate hadron dynamics on QPUs

New from the Quantum Advantage Tracker: run a 120-qubit simulation of SU(2) lattice gauge dynamics on real quantum hardware. Compare quantum and classical methods, inspect circuits, and explore workflows beyond classical limits.

Based on a recent Advantage Tracker submission from the Birla Institute of Technology and Science, Pilani, this tutorial brings state-of-the-art advantage-candidate research into your hands.

Explore the tutorial(opens in a new tab)View the tracker entry(opens in a new tab)

Build flexible error mitigation workflows

Combine advanced quantum error-handling techniques like SLC, PEC, TREX, and post-selection with the new directed execution model. Follow our tutorial built around the shaded lightcones Qiskit addon to create modular workflows that bring multiple error-suppression and mitigation methods together in a single flow. Upgrade to qiskit-ibm-runtime 0.47.0 to get started.

Start the tutorial(opens in a new tab)

Detect errors with Paulice

Add error detection to your workflows with Paulice, a new Qiskit addon. Apply hardware-efficient Pauli checks based on spacetime codes to boost fidelity, tune resource-accuracy tradeoffs, and enhance sampled distributions.

Explore the docs(opens in a new tab)

Prototype faster with ffsim

Use ffsim—an open-source library for fast, symmetry-aware fermionic circuit simulation beyond general-purpose tools. Prototype larger problems, validate results, and benchmark performance before running on hardware.

Read the docs(opens in a new tab)

Additional updates

Calling all educators: give students free hardware access

Bring real quantum computing into classrooms with new Classroom Accounts. Give up to 100 students free, hands-on access to IBM quantum hardware, with simple onboarding and built-in oversight. Request an account for your course or share with educators in your network.

Learn more

Build novel algorithms with IBM Quantum Credits

See how researchers are using IBM Quantum Credits to develop new algorithms that extend today's hardware. Explore four real projects spanning simulation, materials science, and more—and apply for Credits to run your own experiments on quantum systems.

Read the blog and apply

Runtime running out? Upgrade your Open Plan account

Open Plan users can now unlock 180 minutes of quantum runtime after using 20 minutes within a 12-month period. Access advanced hardware, discover new learning resources, and run more experiments on real hardware.

Learn more

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