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SEMI F98-0305 © SEMI 2005 1 SEMI F98-0305 GUIDE FOR TREATMENT OF REU SE WATER IN SEMICONDUCTOR PROCESSING This guide was technically approved by the Global Faci lities Committee and is the di rect responsibility of the N…

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SEMI F97-0305 © SEMI 2005 27
Subsystem/Component: Pumps
Discrete Data Set Data
Possible
(yes/no)
Tag Data Type Update
Cycle
Time
Meaning
Pump 1
(on/off)
No CUB_UPW_
PUMP1_STAT
US
Unsigned8 5 s 0: Off
1: On
Pump 2
(on/off)
No CUB_UPW_
PUMP2_STAT
US
Unsigned8 5 s 0: Off
1: On
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literature, respecting any materials or equipment mentioned herein. These standards are subject to change without
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respecting the validity of any patent rights or copyrights asserted in connection with any items mentioned in this
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Copyright by SEMI® (Semiconductor Equipment and Materials
International), 3081 Zanker Road, San Jose, CA 95134. Reproduction
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consent of SEMI.
SEMI F98-0305 © SEMI 2005 1
SEMI F98-0305
GUIDE FOR TREATMENT OF REUSE WATER IN SEMICONDUCTOR
PROCESSING
This guide was technically approved by the Global Facilities Committee and is the direct responsibility of the
North American Facilities Committee. Current edition approved by the North American Regional Standards
Committee on December 10, 2004. Initially available at www.semi.org February 2005; to be published
March 2005.
1 Purpose
1.1 This guide establishes definitional requirements for industrial water systems that reuse water in a semiconductor
manufacturing facility. It is intended to establish a common basis for developing detailed specifications in
subsequent documents concerning design, performance, optimization, and monitoring of such systems.
1.2 This document may be used by users and suppliers as a basis for developing site-specific specifications and
performance criteria.
2 Scope
2.1 This guide applies to water systems designed for reuse of water including reclaim and recycle, used in
semiconductor manufacturing facilities, supplying water to a variety of uses. Such uses include directing waters to
the front end of a UPW system, to cooling systems, scrubbers, thermal processes, and to irrigation systems,
depending on the quality of the water.
2.2 This guide can be used to understand the design elements and functionality of water systems that support reuse
of water. Although such systems can be retrofitted into existing manufacturing factories, there is a broader range of
opportunities available in new facilities that can be designed with water saving applications in mind.
NOTICE: This standard does not purport to address safety issues, if any, associated with its use. It is the
responsibility of the users of this standard to establish appropriate safety and health practices and determine the
applicability of regulatory or other limitations prior to use.
3 Limitations
3.1 This guide does not define the actual specifications generally negotiated between the user and the manufacturer
of the reclaim or recycle system.
3.2 This guide does not address the methodology for optimizing the reuse of spent rinse waters.
3.3 This guide does not address the frequency or scope of ongoing maintenance for reuse water systems including
change-out of resin beds and replacement of filters.
3.4 This guide does not describe the broad range of possible reuse opportunities and the associated water quality
required for each.
3.5 This guide does not intend to cover any of the important safety considerations that relate to the proper
installation, operation, or maintenance of a reuse water system.
4 Referenced Standards
4.1 SEMI Standards
SEMI E49 — Guide for High Purity and Ultrahigh Purity Piping Performance, Subassemblies, and Final Assemblies
SEMI F63 — Guide for Ultrapure Water System Used in Semiconductor Processing
SEMI S2 — Environmental, Health, and Safety Guideline for Semiconductor Manufacturing Equipment
SEMI F98-0305 © SEMI 2005 2
4.2 Other Standards
“Strategies for Water Reuse Reduction in Semiconductor Manufacturing”, Technology Transfer 97013232A-ENG
1
2004 International Technology Roadmap for Semiconductors
1
NOTICE: Unless otherwise indicated, all documents cited shall be the latest published versions.
5 Terminology
5.1 Acronyms and Abbreviations
5.1.1 UPW — Ultrapure Water
5.2 Definitions
5.2.1 spent water — any discharge water that is consumed or processed and is ready to be discharged to drain.
5.2.2 UPW reclaim — the reuse of spent water as feed water for a process different from the one that discharged it,
e.g. RO reject fed into cooling towers.
5.2.3 UPW recycle — the reuse of spent water as feed water for the same process that discharged it (Point-of-
Discharge (POD) recycling), or the plant UPW system.
5.2.4 UPW reuse — the secondary use of spent water.
6 Design Components and Elements
6.1 Collection of Waste Streams — The most common collection system includes fab-wide gravity collection
piping using PVC or PVDF transfer piping and associated pipe racks and tunnels to the collection tanks. Proper
venting is also critical to correct operation. The system may also include a reclaim pit, pumps, tanks, and controls.
Separate holding tanks are used for each grade of water or type of waste stream so that routing of waste and types of
treatment can be matched to specific needs (see Figure 1).
6.1.1 A key consideration for the design of a water reuse system is the ability to separate different grades of water
and collect each type of effluent. Typical types of segregation include: segregation of clean rinse water from acid
waste; separation of waste streams that contain organics, (e.g. from IPA drying); and isolation of waste streams that
require specific treatment such as for hydrofluoric acid, CMP processing, copper solutions, or phosphoric acid.
6.1.2 A recent initiative by semiconductor fabs encourages tool manufacturers to include multiple drain lines within
the tool so that waste streams can be easily segregated. Diverter valves can be used to segregate chemicals and are
also useful when organics exceed recommended levels. Tool manufacturers can also incorporate plumbing and
treatment modules for returning spent water discharged from a tool as feed water for that tool (Point of Discharge
[POD] recycling). Purchasing tools with recycle hardware already built-in eliminates the need for users to design
and install customized water reuse systems unique to their site.
6.2 Treatment of Waste Streams — In addition to choosing the most effective and technically sound design choices,
other considerations for treatment choices include easy access to all major components for operations and
maintenance, availability of consumables and spare parts, and a high level of automation and reliability. There are
several choices related to treatment choices:
6.2.1 TOC (total oxidizable carbon) destruction by UV is commonly used for removal of organics found in reclaim
waters and is sometimes combined with ozone or hydrogen peroxide.
6.2.2 Activated Carbon or other adsorbents (e.g. GAC) are used for removal of organics and decomposed
hydrogen peroxide, and is a common type of treatment in recycle water systems.
6.2.3 Electrodeionization (EDI) enables ion exchange reactions to be carried out continuously, without off-line
regeneration, by introducing a dc electric field across the resin bed. This electric filed is oriented transverse to the
direction of water flow through the ion exchange column. Under the influence of the applied electric field, impurity
ions, chemically captured by the ion exchange reactions, drift from resin bead to neighboring resin bead and
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