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Low-energy plasma-enhanced chemical vapor deposition

Low-energy plasma-enhanced chemical vapor deposition is a chemistry topic covered in the lgStudy science library. This page brings together a partial reference excerpt, illustrations, worked examples, real-world applications and a short study plan, so you can understand Low-energy plasma-enhanced chemical vapor deposition rather than just read about it. In short: Low-energy plasma-enhanced chemical vapor deposition (LEPECVD) is a plasma-enhanced chemical vapor deposition technique used for the epitaxial deposition of thin semiconductor (silicon, germanium and SiGe alloys) films. A remote low energy, high density DC argon plasma is employed to efficiently decompose the gas phase precursors while leaving the epitaxial layer undamaged, resulting in high quality epilayers and hi…

Low-energy plasma-enhanced chemical vapor deposition — main illustration
Low-energy plasma-enhanced chemical vapor deposition — illustration

Key takeaways

  • Low-energy plasma-enhanced chemical vapor deposition belongs to chemistry; place it in that map before memorising details.
  • Learn the definition first, then one example that makes the definition concrete.
  • Connect Low-energy plasma-enhanced chemical vapor deposition to a quantity you can measure, compute or draw — that is where exam questions come from.
  • Reproduce the core statement of Low-energy plasma-enhanced chemical vapor deposition from memory before moving on to harder problems.

Reference excerpt

Low-energy plasma-enhanced chemical vapor deposition (LEPECVD) is a plasma-enhanced chemical vapor deposition technique used for the epitaxial deposition of thin semiconductor (silicon, germanium and SiGe alloys) films. A remote low energy, high density DC argon plasma is employed to efficiently decompose the gas phase precursors while leaving the epitaxial layer undamaged, resulting in high quality epilayers and high deposition rates (up to 10 nm/s).

Working principle The substrate (typically a silicon wafer) is inserted in the reactor chamber, where it is heated by a graphite resistive heater from the backside. An argon plasma is introduced into the chamber to ionize the precursors' molecules, generating highly reactive radicals which result in the growth of an epilayer on the substrate. Moreover, the bombardment of Ar ions removes the hydrogen atoms adsorbed on the surface of the substrate while introducing no structural damage. The high reactivity of the radicals and the removal of hydrogen from the surface by ion bombardment prevent the typical problems of Si, Ge and SiGe alloys growth by thermal chemical vapor deposition (CVD), which are

dependence of the growth rate from the substrate temperature, due to the thermal energy needed for precursors decomposition and hydrogen desorption from the substrate high temperatures (>1000 °C for silicon) required to get a significant growth rate, which is strongly limited by the aforementioned effects strong dependence of the deposition rate on the SiGe alloy composition, due to the large difference between the hydrogen desorption rate from Si and Ge surfaces. Thanks to this effects the growth rate in a LEPECVD reactor depends only on the plasma parameters and the gas fluxes, and it is possible to obtain epitaxial deposition at much lower temperatures compared to a standard CVD tool.

LEPECVD reactor

The LEPECVD reactor is divided in three main parts:

a loadlock, to load the substrates into the chamber without breaking the vacuum the main chamber, which is kept in UHV at a base pressure of ~10 − 9 {\displaystyle ^{-9}} mbar the plasma source, where the plasma is generated. The substrate is placed at the top of the chamber, facing down toward the plasma source. Heating is provided from the back side by thermal radiation from a resistive graphite heater incapsulated between two boron nitride discs, which improve the temperature uniformity across the heater. Thermocouples are used to measure the temperature above the heater, which is then correlated to that of the substrate by a calibration done with an infrared pyrometer. Typical substrate temperatures for monocrystalline films are 400 °C to 760 °C, for germanium and silicon respectively. The potential of the wafer stage can be controlled by an external power supply, influencing the amount and the energy of radicals impinging on the surface, and is typically kept at 10-15 V with respect to the chamber walls. The process gases are introduced into the chamber through a gas dispersal ring placed below the wafer stage. The gases used in a LEPECVD reactor are silane (SiH4) and germane (GeH4) for silicon and germanium deposition respectively, together with diborane (B2H6) and phosphine (PH3) for p- and n-type doping.

Plasma source The plasma source is the most critical component of a LEPECVD reactor, as the low energy, high density, plasma is the key difference from a typical PECVD deposition system. The plasma is generated in a source which is attached to the bottom of the chamber. Argon is fed directly in the source, where tantalum filaments are heated to create an electron-rich environment by thermionic emission. The plasma is then ignited by a DC discharge from the heated filaments to the grounded walls of the source. Thanks to the high electron density in the source the voltage required to obtain a discharge is around 20-30V, resulting in an ion energy of about 10-20 eV, while the discharge current is of the order of several tens of amperes, giving a high ion density. The DC discharge current can be tuned to control the ion density, thus changing the growth rate: in particular at a larger discharge current the ion density is higher, therefore increasing the rate.

Plasma confinement The plasma enters the growth chamber through an anode electrically connected to the grounded chamber walls, which is used to focus and stabilize the discharge and the plasma. Further focusing is provided by a magnetic field directed along the chamber's axis, provided by external copper coils wrapped around the chamber. The current flowing through the coils (i.e. the intensity of the magnetic field) can be controlled to change the ion density at the substrate's surface, thus changing the growth rate. Additional coils ("wobblers") are placed around the chamber, with their axis perpendicular to the magnetic field, to continuously sweep the plasma over the substrate, improving the homogeneity of the deposited film.

Applications Thanks to the possibility of changing the growth rate (through the plasma density or gas fluxes) independently from the substrate temperature, both thin films with sharp interfaces and a precision down to the nanometer scale at rates as low as 0.4 nm/s, as well as thick layers (up to 10 um or more) at rates as high as 10 nm/s, can be grown using the same reactor and in the same deposition process. This has been exploited to grow low-loss composition-graded waveguides for NIR and MIR and integrated nanostructures (i.e. quantum well stacks) for NIR optical amplitude modulation. The capability of LEPECVD to grow both very sharp quantum wells on thick buffers in the same deposition step has also been employed to realize high mobility strained Ge channels. Another promising application of the LEPECVD technique is the possibility of growing high aspect ratio, self-assembled silicon and germanium microcrystals on deeply patterned Si substrates. This solves many problems related to heteroepitaxy (i.e. thermal expansion coefficient and crystal lattice mismatch), leading to very high crystal quality, and is possible thanks to the high rates and low temperatures found in a LEPECVD reactor.

See also Chemical vapor deposition Plasma-enhanced chemical vapor deposition

References

External links LEPECVD page on the website of L-NESS laboratory of Politecnico di Milano, in Como, Italy.

Illustrations

Low-energy plasma-enhanced chemical vapor deposition: Plasma (argon-only on the left, argon and silane on the right) inside a prototype LEPECVD reactor at the LNESS laboratory in Como, Italy.
Plasma (argon-only on the left, argon and silane on the right) inside a prototype LEPECVD reactor at the LNESS laboratory in Como, Italy.
Low-energy plasma-enhanced chemical vapor deposition: Sketch of a typical LEPECVD reactor.
Sketch of a typical LEPECVD reactor.

Worked examples

Example 1 — a first encounter with Low-energy plasma-enhanced chemical vapor deposition

Start with the simplest possible case. Write down what Low-energy plasma-enhanced chemical vapor deposition claims or describes in one sentence, then invent the smallest concrete situation in which that sentence is true. In chemistry, the smallest case is usually a single object, a single equation or a single measurement. Check that every symbol or term in your sentence has a meaning in that case.

Example 2 — changing one variable

Take the situation from Example 1 and change exactly one quantity: double it, halve it, or set it to zero. Predict what should happen to Low-energy plasma-enhanced chemical vapor deposition before you calculate. Comparing your prediction with the result is the fastest way to find out whether you understand the idea or only the words.

Example 3 — an exam-style question

Typical questions about Low-energy plasma-enhanced chemical vapor deposition ask you to (a) state it precisely, (b) apply it to given data, and (c) explain a limitation. Practise writing all three answers in under five minutes; the third part is what separates a full-mark answer from an average one.

Applications of Low-energy plasma-enhanced chemical vapor deposition

In research
Low-energy plasma-enhanced chemical vapor deposition appears in chemistry research whenever the underlying quantities have to be modelled precisely. Papers usually cite it as a starting assumption and then explore where it breaks down.
In technology and industry
Engineering practice reuses Low-energy plasma-enhanced chemical vapor deposition in design rules, simulations and safety margins. Knowing the idea lets you read a specification sheet and understand why the numbers look the way they do.
In the classroom
Low-energy plasma-enhanced chemical vapor deposition is common in secondary-school and first-year university syllabi. It links to neighbouring topics Chemical vapor deposition, Plasma processing, Semiconductor device fabrication, so understanding it makes those chapters shorter.
In everyday life
Look for Low-energy plasma-enhanced chemical vapor deposition outside the textbook — in sport, cooking, traffic, electronics or the sky above you. An example you found yourself is remembered far longer than one you were given.
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How to study Low-energy plasma-enhanced chemical vapor deposition in 20 minutes

  1. Read the reference excerpt below once, without taking notes.
  2. Close the page and write down what Low-energy plasma-enhanced chemical vapor deposition means in your own words.
  3. Compare your version with the excerpt and mark what you missed.
  4. Work through the three examples above with pen and paper.
  5. Explain Low-energy plasma-enhanced chemical vapor deposition out loud to somebody else — or to Teacher Smith in the lgStudy chat.

Frequently asked questions

What is Low-energy plasma-enhanced chemical vapor deposition in simple terms?

Low-energy plasma-enhanced chemical vapor deposition (LEPECVD) is a plasma-enhanced chemical vapor deposition technique used for the epitaxial deposition of thin semiconductor (silicon, germanium and SiGe alloys) films. A remote low energy, high density DC argon plasma is employed to efficiently de…

Why does Low-energy plasma-enhanced chemical vapor deposition matter?

Because it connects several chemistry ideas at once: it gives you a definition you can apply, a quantity you can calculate, and a way to check whether a result is plausible.

How should I study Low-energy plasma-enhanced chemical vapor deposition?

Read the excerpt, restate it from memory, then work through the examples and applications listed on this page. The five-step study plan above takes about twenty minutes.

What does this page cover?

It gives you a compact reference excerpt plus original lgStudy explanations, examples, applications and study material on Low-energy plasma-enhanced chemical vapor deposition.

Tags

  • Chemical vapor deposition
  • Plasma processing
  • Semiconductor device fabrication
  • Thin film deposition

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