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실리카 웨이퍼 첨가제용 99.999% 99.9999% 결정질 붕소 과립

99.999% 순도의 결정질 붕소 과립은 반도체 산업에서 실리카 웨이퍼 도핑제로 널리 사용됩니다. 조밀한 결정 구조는 고온 공정 중 휘발성 오염 물질을 최소화하면서 안정적인 도핑 성능을 제공합니다. 중요한 p형 도핑 물질로서 반도체 및 태양광 산업의 단결정 실리콘 웨이퍼 제조에 정밀하게 적용됩니다. 균일한 입자 크기는 실리콘 기판 내부의 균일한 확산을 보장하여 웨이퍼의 안정적인 전기 전도도를 확보하는 데 도움을 줍니다.

$5,490,000.00 – $6,000,000.00 / MT

실리카 웨이퍼 첨가제용 99.999% 99.9999% 결정질 붕소 과립

99.999% 순도의 결정질 붕소 과립은 반도체 산업에서 실리카 웨이퍼 도핑제로 널리 사용됩니다. 조밀한 결정 구조는 고온 공정 중 휘발성 오염 물질을 최소화하면서 안정적인 도핑 성능을 제공합니다. 중요한 p형 도핑 물질로서 반도체 및 태양광 산업의 단결정 실리콘 웨이퍼 제조에 정밀하게 적용됩니다. 균일한 입자 크기는 실리콘 기판 내부의 균일한 확산을 보장하여 웨이퍼의 안정적인 전기 전도도 확보를 돕습니다.

엄격한 정제 관리를 통해 금속 및 기체 불순물을 극히 낮은 수준으로 줄여 첨단 칩 및 태양 전지 생산에 필요한 높은 기준을 완벽하게 충족합니다. 유동성이 좋은 과립형 형태로 산업용 도핑로에서 손쉬운 투입과 안전한 취급이 가능합니다.

제품 목록:
분자식: 비
CAS 7440-42-8
밀도 2.3 g/cm3
단계 β-B 단계
녹는점 2300°C
비등점 2550°C
모스 경도 9
상대 원자 질량 10.81
안정 동위원소 10B, 11B
색상 짙은 회색, 검정색

 

화학적 조성:

화학적인 2N 결정질 붕소 3N 결정질 붕소 4N 결정질 붕소 5N 결정질 붕소 6N 결정질 붕소
비 99% 이상 ≥99.9% ≥99.99% ≥99.999% ≥99.9999%
철 ≤500ppm 200ppm 이하 ≤90ppm ≤8ppm ≤0.5 ppm
~에 ≤2.5ppm ≤0.08ppm ≤0.06ppm ≤0.02ppm ≤0.02ppm
~에 ≤1 ppm ≤0.8 ppm ≤0.3 ppm ≤0.03ppm ≤0.03ppm
와 함께 ≤12ppm ≤10ppm ≤0.1 ppm ≤0.03ppm ≤0.03ppm
스니 ≤30ppm ≤9ppm ≤0.1 ppm ≤0.1 ppm ≤0.08ppm
망 ≤300ppm ≤3ppm ≤1.1 ppm ≤0.1 ppm ≤0.07ppm
납 ≤0.08ppm ≤0.3 ppm ≤1.1 ppm ≤0.08ppm ≤0.02ppm
저것 / ≤18ppm ≤0.2ppm ≤0.1 ppm ≤0.01ppm
처럼 / / / ≤0.08ppm ≤0.01ppm
안에 / / / ≤0.05ppm ≤0.02ppm
게 / / / ≤0.05ppm ≤0.04ppm

 

일반적인 크기 및 포장:

붕소 함량 일반적인 크기 패키지
99 1-5μm, 10-30μm, 50-100μm 1kg/5kg 진공 알루미늄 호일 백에 포장되어 있습니다 (나노 분말만 밀봉되어 있으며 진공 포장은 되어 있지 않습니다).
99.9 -200메쉬, 0-10μm, 1-10mm 분말형: 1kg/5kg/ 진공 알루미늄 호일 백 포장  

과립형: 50g/500g/1000g 용량으로 PP 용기에 포장되어 있으며, 불활성 가스로 충전되어 있습니다.

99.99 -200메쉬, 1-10mm 50g/100g 용량으로 PP 용기에 포장되어 있으며, 불활성 가스로 밀봉되어 있습니다.
99.999
99.9999

 

애플리케이션:

1. 원자력 산업에서 결정질 붕소의 응용 분야:

Crystalline boron plays a crucial role in the nuclear energy field. It can be used as a neutralization control material in nuclear reactors. Boron can compensate for and regulate neutralization reactivity and to facilitate emergency shutdowns. Thus maintains stable reactor operation. Crystalline boron not only has a high neutralization absorption cutoff but also a wide range of neutralization energy absorption, effectively reducing or regulating the neutralization flux generated by nuclear energy. Thereby it ensures the safety of the nuclear energy system.

2. Applications of Crystalline Boron in Semiconductor Manufacturing:

Crystalline boron is also widely used in the semiconductor industry. As a p-type dopant, crystalline boron can be used to modify the conductivity of semiconductor materials. By doping crystalline boron into silicon Ingot, the conductivity properties of silicon can be altered. Then manufacture semiconductor devices with different conductivity types, such as diodes and field-effect transistors. In addition, crystalline boron can also be used as a raw material for growing long-lasting semiconductor single-crystal materials. Boron-doped silicon single crystals can be grown using a melt-blown method for fabricating high-performance semiconductor devices.

99.9% purity crystalline boron powder is used in the production of solar silicon wafers as a substrate dopant for P-type silicon wafers and as a boron emitter diffuser for N-type silicon wafers. High-purity boron powders of 5N and 6N can be used as dopants for P-type semiconductors to alter their conductivity and are used in the production of high-purity silicon wafers.

3. Application of crystalline boron in semiconductor sputtering targets:

3N and 4N crystalline boron particles can be added to functional alloy products to form targets for semiconductor sputtering coating.

4. Applications of Crystalline Boron in Optics:

Crystalline boron also has extensive applications in optics. Due to its excellent nonlinear optical properties, crystalline boron can achieve functions such as light modulation, frequency sweeping, and frequency doubling. Therefore, crystalline boron is widely used in optical devices, including optical modulators, optical frequency combs, and lasers. Furthermore, crystalline boron can also be used as a gain medium in infrared lasers, exhibiting a large emission cutoff and a wide excitation spectrum range.

5. Crystalline Boron in High-Hardness Ceramic Materials:

Crystalline boron can also be used to prepare high-hardness materials, such as boron carbide (B4C) and graphite boron compounds (Bg). Boron carbide is an extremely hard ceramic material with excellent wear resistance and high-temperature resistance, and is therefore widely used in the manufacture of bulletproof armor, hard tools, abrasives, and wear-resistant ceramics. Graphite boron compounds are materials with a graphite-like structure, exhibiting high electrical conductivity and thermal stability, and can be used to prepare high-performance conductive binders, thermally conductive materials, and friction materials.

6. Applications of Crystalline Boron in Thermal Batteries:

Thermal batteries are single-phase thermally activated storage batteries using molten salt as the electrolyte. They have advantages such as small size, light weight, long storage time, maintenance-free operation, rapid and reliable activation, and a wide operating temperature range, and are widely used in the ignition devices of some strategic and conventional weapons. The anode material of a thermal battery plays a decisive role in its capacity, volume, and power output. Thermal battery anode materials have evolved from the initial magnesium-based and calcium-based materials to the current lithium-based materials. For example, Li-B composites possess outstanding advantages such as high energy density, high power output, low polarization, electrochemical potential close to that of pure lithium, and remaining solid at temperatures above 600℃. It is the most promising thermal battery anode material and is gradually being applied in high-end thermal batteries.

7. Applications of Crystalline Boron in the Military Industry:

Crystalline boron can be used to manufacture high-purity boron ceramic ballistic materials, high-purity boron delay agents, high-purity boron welding fluxes, high-purity boron explosives, and high-purity boron fuel-rich and oxygen-depleted rocket propellants.

8. Crystalline boron in alloy manufacturing:

High-purity boron copper alloy, high-purity boron titanium alloy, high-purity boron polycrystalline steel, high-purity boron superhard wear-resistant tools, high-purity boron corrosion-resistant steel plates, high-purity boron nickel alloy, high-purity boron chromium alloy, lithium boron alloy (a novel battery material), boron-magnesium superconducting alloy.

9. Applications of crystalline boron in aerospace:

High-purity crystalline boron powder can be used as a nano-coating powder material. Through sputtering technology, the powder material is coated onto the surface of a substrate, making components wear-resistant, corrosion-resistant, high-temperature resistant, oxidation-resistant, and weather-resistant. This meets the requirements of engines under the extremely harsh service conditions of aerospace and aviation, and can also meet special requirements in optoelectronics and other fields.

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