FAQ
Enerbond solid-state batteries replace liquid electrolytes with solid electrolytes, fundamentally eliminating leakage and flammability risks. Compared to traditional lithium-ion batteries, they offer higher energy density (more capacity in a smaller size), a wider operating temperature range (-40°C to +80°C), and longer cycle life (≥8,000 cycles). Additionally, solid-state batteries eliminate the short-circuit risk caused by lithium dendrite penetration, greatly enhancing safety.
A graphene supercapacitor stores energy through electrostatic adsorption of ions rather than chemical reactions, enabling charge/discharge in seconds to minutes with a power density 10–100 times that of conventional batteries. Unlike batteries, supercapacitors excel in high‑power, short‑duration applications (e.g., grid frequency regulation, energy recovery), offer cycle life exceeding 500,000 cycles, and are not degraded by deep charge/discharge. However, they have lower energy density, so Enerbond often combines supercapacitors with solid‑state batteries to meet both energy and power requirements.
Solid state batteries use a non‑flammable solid electrolyte, eliminating the root cause of thermal runaway at the material level. Even under extreme conditions such as puncture, crushing, overcharge, or high temperature, the battery will not catch fire or explode.
Graphene supercapacitors offer a cycle life exceeding one million cycles, far superior to conventional batteries (typically 5,000–10,000 cycles). They exhibit virtually no performance degradation under frequent, high-current charge/discharge conditions, making them ideal for applications requiring second-to-minute response times, such as regenerative energy recovery, port cranes, primary grid frequency regulation, and UPS systems. In addition, their maintenance-free nature reduces long-term operating costs.