Humanoid robots generally have some means of handling objects. The simplest typically involves two "fingers", without pressure sensors to allow the robot to calibrate the amount of force to the object. More sophisticated versions attempt to closely mimic the hand. The hand is one of the most complex mechanical subsystems in the human body. A biological hand has approximately 27 degrees of freedom (DoF), thousands of tactile receptors, fine force control, is waterproof. Hands must also be durable, affordable, mass-producible, and tolerate varying environmental conditions (water, heat,...). As of April 2026, leading humanoid developers have converged on five-fingered, anthropomorphic hands, but their design philosophies diverge sharply in actuation, sensing, materials, and control architecture, as demonstrated by Tesla Optimus (Gen 3), Figure 02/Helix 02, Sanctuary AI Phoenix, Boston Dynamics Atlas (electric production version), Apptronik Apollo, and the research benchmark Shadow Dexterous Hand.
History Early robotic hands, such as the 1960s Stanford/JPL hand or 1980s Utah/MIT hand, were laboratory prototypes that prioritized research over practicality. By the 2000s, commercial efforts such as the Shadow Dexterous Hand (first released in 2005) established the standard. Shadow's design supported 20 DoF with 24 independent movements, tendon-driven actuation, and extensive tactile sensing. These research hands were expensive (often exceeding $100,000 per unit) and fragile, thus unsuitable for real-world deployment. The modern wave of general-purpose humanoids, began in 2022, prioritized mass manufacturability, cost, and AI-driven control.
Design Hands must be lightweight (to preserve battery life and balance), rugged enough for factory or home use, and compatible with end-to-end neural networks (end-to-end implies that all behavior comes from the network rather than explicitly coded logic). Developers have converged on tendon-driven or hybrid actuation to move motors out of the fingers, but they differ on whether to use electric, hydraulic, or hybrid systems and how to embed tactile sensing.
Products
Apptronik Apollo The first-generation Apollo, unveiled by Apptronik in 2023, launched with a simple, low-dexterity gripper of about 0 to 1 degrees of freedom, suited to what the company called "gross manipulation": moving boxes, totes, and crates that can be grasped with two hands without a fully dexterous hand or wrist. These early hands were sourced from third-party makers of robotic prosthetics rather than developed in-house. Apptronik later adopted the Ability Hand from the prosthetics company Psyonic across its humanoid lineup, including in automotive manufacturing demonstrations. Originally a prosthetic device, the Ability Hand is a carbon-fibre unit weighing about 500 grams with six active degrees of freedom, flexion and extension for each finger plus thumb rotation. According to Psyonic, it carries 37 tactile and positional sensors, including six force-sensitive resistors per finger and vibration-based haptic feedback, and closes its fingers in about 200 milliseconds. The same hardware serves both prosthetic wearers and robots, differing mainly in the control interface.
Boston Dynamics Atlas Boston Dynamics 2026 electric production version. The electric Atlas uses hands with integrated tactile sensing in fingers and palms, though exact DoF figures are not public, beyond the overall robot's 56 DoF. Emphasis is on industrial durability, 50 kg payload, and 3D-printed titanium/aluminum components. Hands are designed for fenceless factory integration and heavy material handling.
Strengths: Rugged, production-ready construction with proven whole-body dynamics. Weaknesses: Less public data on fine dexterity; appears optimized more for gripping and lifting than fine manipulation.
Figure 02 / Helix 02 Figure AI's fourth-generation hand on the Figure 02 (and its Helix 02 software update) offers16 DoF per hand with electric actuators and sensors in each finger. Each finger is powered by a self-contained unit containing motor and sensors, with wiring routed through a human-like wrist. Payload capacity reaches 25 kg per hand (combined arm strength), and fingertip tactile sensors detect forces as low as 3 grams. Palm cameras provide in-hand visual feedback when objects are occluded from head cameras. The design prioritizes force-modulated grasping and contact-aware manipulation, trained end-to-end with Figure's Helix AI. Hands are electric, emphasizing reliability and lower maintenance.
Strengths: Excellent tactile sensitivity, integrated vision-in-hand, and strong AI-driven autonomy demonstrations (e.g., autonomous cube reorientation). Weaknesses: Fewer DoF.
Fourier GR-2 The Fourier GR-2 has 12 DoF.
Strengths: Strong real-time grip adaptation using tactile arrays, solid balance between cost and performance, good for warehouse and logistics work Weaknesses: Moderate DoF, less advanced in-hand manipulation compared to Sanctuary or Tesla, limited public long-term durability data
Honda Avatar The Honda Avatar has 16 cable-driven joints.
Strengths: Exceptional durability and reliability (automotive-grade engineering), high grip strength, excellent long-term cycling performance Weaknesses: Fewer DoF, more conservative design focused on reliability over dexterity
Sanctuary AI Phoenix Sanctuary AI's Phoenix (7th–8th generation as of 2026) features 20–21 DoF per hand driven by a proprietary hydraulic system. Hands include micro-barometer-based tactile arrays (7 cells per finger pad) with sensitivity of 5 mN (near-human level). Hydraulic actuation provides high force density and compliance, enabling the robot to perform 98% of warehouse manual tasks with high fidelity.
Strengths: Industry-leading tactile feedback and hydraulic power for heavy, compliant manipulation. Demonstrated autonomous learning of new tasks in under 24 hours via reinforcement learning. Weaknesses: Hydraulic systems require fluid maintenance, sealing, and add weight/complexity compared with fully electric designs.
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